16 Commits

Author SHA1 Message Date
Tony 626f86ec4e feat: add support for W5500 SPI Ethernet in gateway
- Introduced configuration options for wired Ethernet support in Kconfig and sdkconfig.
- Implemented Ethernet initialization and event handling in GatewayNetworkService.
- Enhanced app_main to manage Ethernet alongside Wi-Fi.
- Updated GatewayRuntime to store Ethernet information.
- Modified CMakeLists and include files to accommodate new Ethernet dependencies.
- Ensured backward compatibility by allowing Ethernet initialization failures to be ignored.

Signed-off-by: Tony <tonylu@tony-cloud.com>
2026-05-12 08:42:10 +08:00
Tony 36d10702da Add EtsDeviceRuntime class for handling KNX device runtime operations
- Introduced EtsDeviceRuntime class to manage device runtime functionalities including handling tunnel frames and function property commands.
- Added support for individual address management and memory snapshot retrieval.
- Updated EtsMemorySnapshot structure to include individual address.
- Implemented identity application for DALI devices in the memory loader.
- Enhanced CMakeLists.txt to include new source files and compile definitions.
- Updated header files to include new dependencies and declarations.
- Refactored existing memory loading logic to accommodate new device runtime features.

Signed-off-by: Tony <tonylu@tony-cloud.com>
2026-05-12 05:19:14 +08:00
Tony d231460612 fix(git): update .gitignore to include .DS_Store and change knx submodule branch to tonycloud-dev
Signed-off-by: Tony <tonylu@tony-cloud.com>
2026-05-11 12:16:48 +08:00
Tony 70367f53ca Add OpenKNX IDF component with TPUart integration
- Created CMakeLists.txt for the OpenKNX IDF component, ensuring dependencies on OpenKNX and TPUart submodules.
- Implemented Arduino compatibility header for basic functions like millis, delay, pinMode, and digitalRead.
- Developed EspIdfPlatform class for network interface management and multicast communication.
- Added EtsMemoryLoader for loading ETS memory snapshots and managing associations.
- Introduced TpuartUartInterface for UART communication with methods for reading, writing, and managing callbacks.
- Implemented arduino_compat.cpp for Arduino-like functionality on ESP-IDF.
- Created source files for platform and memory loader implementations.
- Updated submodules for knx, knx_dali_gw, and tpuart.

Signed-off-by: Tony <tonylu@tony-cloud.com>
2026-05-11 07:05:40 +08:00
Tony 1b8753636f feat(gateway): add KNX submodule with branch configuration
Signed-off-by: Tony <tonylu@tony-cloud.com>
2026-05-11 04:42:01 +08:00
Tony e94945fc0f feat(gateway): enhance UART configuration validation for Modbus and KNX
Signed-off-by: Tony <tonylu@tony-cloud.com>
2026-05-11 03:44:14 +08:00
Tony bf23cf0b79 feat(gateway_knx): add TP-UART control and initialization functionality
Signed-off-by: Tony <tonylu@tony-cloud.com>
2026-05-11 02:40:31 +08:00
Tony 1a8ee06ec1 Implement KNX Gateway functionality with support for DALI integration
- Added gateway_knx.cpp to handle KNX communication and DALI bridge requests.
- Implemented functions for encoding/decoding KNX telegrams and managing group writes.
- Introduced GatewayKnxBridge and GatewayKnxTpIpRouter classes for managing KNX to DALI routing and IP tunneling.
- Added configuration handling for KNX settings, including UART and multicast options.
- Implemented error handling and logging for various KNX operations.

Signed-off-by: Tony <tonylu@tony-cloud.com>
2026-05-08 18:19:37 +08:00
Tony 029785ff1d feat(gateway): Update SDK configuration and add 485 control bridge
- Changed flash size configuration from 16MB to 4MB and updated partition table filename.
- Introduced two gateway channels with UART configurations for communication.
- Added support for gateway cache and startup services including BLE and Wi-Fi.
- Enabled SPI RAM and configured its parameters for better memory management.
- Enhanced the gateway bridge service to handle generated Modbus points more efficiently.
- Refactored the gateway Modbus component to improve point management and added new methods for point description and generation.
- Implemented a new Gateway485ControlBridge for handling 485 control communication with UART.
- Added necessary files for the 485 control bridge including configuration and implementation.

Signed-off-by: Tony <tonylu@tony-cloud.com>
2026-05-06 00:39:58 +08:00
Tony 34d2d9caa0 Add serial configuration support to Gateway Modbus
- Introduced GatewayModbusSerialConfig structure to encapsulate serial communication settings.
- Added clamping functions for integer and size values to ensure valid configuration ranges.
- Updated GatewayModbusConfigFromValue to parse serial configuration from JSON input.
- Implemented transport type checking functions for TCP, RTU, ASCII, and Serial.
- Enhanced GatewayModbusConfigToValue to include serial configuration in output.

Signed-off-by: Tony <tonylu@tony-cloud.com>
2026-05-04 14:34:05 +08:00
Tony 640e78f688 feat(gateway_bridge): enhance DaliBridgeRequest parsing with support for unknown keys
Signed-off-by: Tony <tonylu@tony-cloud.com>
2026-05-04 09:46:24 +08:00
Tony ee1246c942 feat(gateway_bacnet): add bacnet_stack submodule and update CMakeLists.txt path
Signed-off-by: Tony <tonylu@tony-cloud.com>
2026-05-04 03:23:34 +08:00
Tony 7424b43bdd Add diagnostic bit support to Gateway Modbus
- Introduced new enum value `kShortDiagnosticBit` to `GatewayModbusGeneratedKind`.
- Enhanced `GatewayModbusPoint` and `GatewayModbusPointBinding` structures to include diagnostic snapshot, boolean key, and device type.
- Added new diagnostic bit specifications and updated the corresponding arrays for generated discrete inputs and holding registers.
- Implemented `addGeneratedDiagnosticPoint` function to handle the creation of diagnostic points.
- Updated `rebuildMap` method to include generated diagnostic points during the map rebuilding process.

Co-authored-by: Copilot <copilot@github.com>
2026-05-04 02:26:09 +08:00
Tony 694217eb2c Add Gateway Modbus component with configuration and bridge implementation
- Created CMakeLists.txt for the Gateway Modbus component.
- Added header file `gateway_modbus.hpp` defining configuration structures, enums, and point structures.
- Implemented the `gateway_modbus.cpp` source file containing the logic for managing Modbus points, including reading and writing operations.
- Introduced utility functions for converting configurations to and from DaliValue, and for handling Modbus space and access types.
- Established a bridge class to manage Modbus points and their interactions with the DaliBridgeEngine.

Co-authored-by: Copilot <copilot@github.com>
2026-05-04 01:19:05 +08:00
Tony 8aa5a451a4 feat(gateway_bacnet): add support for new BACnet object types and enhance state management functions
Co-authored-by: Copilot <copilot@github.com>
2026-05-04 01:18:44 +08:00
Tony 30a96c5125 feat(gateway_bacnet): enhance BACnet object binding with out_of_service and reliability fields
feat(gateway_bacnet): add functions to clear BACnet objects and set their states

feat(gateway_bridge): implement discovery inventory management and scanning functionality

fix(gateway_bridge): update handleGet to support new inventory and effective model actions

refactor(gateway_bridge): improve BACnet binding handling and reliability reporting

Co-authored-by: Copilot <copilot@github.com>
2026-05-02 21:16:32 +08:00
53 changed files with 10376 additions and 236 deletions
+1
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@@ -1,3 +1,4 @@
**/build/
build/
**/managed_components/
.DS_Store
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@@ -0,0 +1,15 @@
[submodule "bacnet_stack"]
path = bacnet_stack
url = https://git.tonycloud.org/dali/bacnet_stack.git
[submodule "knx"]
path = knx
url = https://git.tonycloud.org/knx/knx.git
branch = v1
[submodule "knx_dali_gw"]
path = knx_dali_gw
url = https://git.tonycloud.org/knx/GW-REG1-Dali.git
branch = tonycloud-dev
[submodule "tpuart"]
path = tpuart
url = https://git.tonycloud.org/knx/tpuart.git
branch = main
+361
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@@ -0,0 +1,361 @@
# Gateway Modbus
The native gateway exposes each DALI channel as a Modbus server. Supported transports are:
- `tcp-server`: Modbus TCP server, default TCP port `1502`.
- `rtu-server`: Modbus RTU slave/server on an ESP-IDF UART.
- `ascii-server`: Modbus ASCII slave/server on an ESP-IDF UART.
The generated Modbus map is identical for TCP, RTU, and ASCII. Only the frame transport changes.
## Configuration
Compile-time defaults live in `apps/gateway/main/Kconfig.projbuild`:
- `GATEWAY_MODBUS_DEFAULT_TRANSPORT_TCP`
- `GATEWAY_MODBUS_DEFAULT_TRANSPORT_RTU`
- `GATEWAY_MODBUS_DEFAULT_TRANSPORT_ASCII`
- `GATEWAY_MODBUS_TCP_PORT`
- `GATEWAY_MODBUS_UNIT_ID`
- `GATEWAY_MODBUS_SERIAL_UART_PORT`
- `GATEWAY_MODBUS_SERIAL_TX_PIN`
- `GATEWAY_MODBUS_SERIAL_RX_PIN`
- `GATEWAY_MODBUS_SERIAL_BAUDRATE`
- `GATEWAY_MODBUS_SERIAL_RESPONSE_TIMEOUT_MS`
- `GATEWAY_MODBUS_SERIAL_RS485_ENABLED`
- `GATEWAY_MODBUS_SERIAL_RS485_DE_PIN`
- `GATEWAY_MODBUS_ALLOW_UART0`
UART0 is reserved for the ESP-IDF console by default. Select `GATEWAY_MODBUS_ALLOW_UART0` only when the console has been moved away from UART0 or the deployment intentionally repurposes it. The app validates the Kconfig default UART against DALI serial PHY assignments at boot.
Runtime bridge config keeps the existing top-level `modbus` object. The serial fields are nested under `serial`:
```json
{
"modbus": {
"transport": "rtu-server",
"unitID": 1,
"port": 1502,
"serial": {
"uartPort": 1,
"txPin": 17,
"rxPin": 18,
"baudrate": 9600,
"dataBits": 8,
"parity": "none",
"stopBits": 1,
"rxBufferBytes": 512,
"txBufferBytes": 512,
"responseTimeoutMs": 20,
"interFrameGapUs": 4000,
"rs485": {
"enabled": true,
"dePin": 16
}
}
}
}
```
`unitID` accepts aliases `unitId` and `unit_id`. A configured `unitID` of `0` keeps the gateway compatibility behavior where incoming unit ids are accepted as a wildcard. Incoming serial requests addressed to unit id `0` are treated as Modbus broadcast and do not generate a response.
## UART Management Commands
When a Modbus serial transport is active, the UART also accepts management lines before Modbus frame parsing. A management line starts with `@DALIGW `, contains JSON, and ends with newline.
Examples:
```text
@DALIGW {"action":"modbus_status","gw":3}
@DALIGW {"action":"modbus_stop","gw":3}
@DALIGW {"action":"modbus_config","gw":3,"modbus":{"transport":"ascii-server","unitID":1,"serial":{"uartPort":1,"txPin":17,"rxPin":18,"baudrate":9600,"rs485":{"enabled":true,"dePin":16}}}}
```
Responses are newline-terminated `@DALIGW` JSON lines. A successful `modbus_config` command is saved to NVS and restarts the Modbus transport after the response is written.
HTTP still supports the bridge routes:
- `GET /bridge?action=status&gw=N`
- `GET /bridge?action=config&gw=N`
- `GET /bridge?action=modbus&gw=N`
- `POST /bridge?action=config&gw=N`
- `POST /bridge?action=modbus_start&gw=N`
- `POST /bridge?action=modbus_stop&gw=N`
## Function Codes
Supported function codes are:
| Code | Name | Map space |
| --- | --- | --- |
| `0x01` | Read coils | Coils |
| `0x02` | Read discrete inputs | Discrete inputs |
| `0x03` | Read holding registers | Holding registers |
| `0x04` | Read input registers | Input registers |
| `0x05` | Write single coil | Coils |
| `0x06` | Write single holding register | Holding registers |
| `0x0F` | Write multiple coils | Coils |
| `0x10` | Write multiple holding registers | Holding registers |
Limits are `2000` read bits, `125` read registers, `1968` write bits, `123` write registers, and `252` PDU bytes.
Exception codes used by the gateway:
| Code | Meaning |
| --- | --- |
| `0x01` | Unsupported function |
| `0x02` | Unmapped address or read failure |
| `0x03` | Invalid quantity, value, or request shape |
| `0x04` | DALI execution failure |
| `0x0B` | Unit id mismatch |
## Address Calculation
Modbus protocol frames use zero-based wire offsets. Most tools show human addresses with traditional bases:
| Space | Human base | Function codes |
| --- | ---: | --- |
| Coil | `1` | `0x01`, `0x05`, `0x0F` |
| Discrete input | `10001` | `0x02` |
| Input register | `30001` | `0x04` |
| Holding register | `40001` | `0x03`, `0x06`, `0x10` |
For the main generated slice, every DALI short address `0-63` gets a stride of `32` points in each space:
```text
human = base + shortAddress * 32 + offset
wire = human - base
```
Example: short address `5` brightness is holding-register offset `0`:
```text
human = 40001 + 5 * 32 + 0 = 40161
wire = 40161 - 40001 = 160
```
The diagnostic discrete-input extension starts after the first `64 * 32` discrete inputs:
```text
diagnosticBase = 10001 + 64 * 32 = 12049
human = 12049 + shortAddress * 128 + diagnosticOffset
wire = human - 10001
```
Example: short address `5`, diagnostic offset `105` (`DT8 xy out of range`):
```text
human = 12049 + 5 * 128 + 105 = 12794
wire = 12794 - 10001 = 2793
```
## Main Generated Map
Generated points exist for all short addresses `0-63`, even when no device has been discovered. Unknown numeric values read as `0xFFFF`; unknown booleans read as false unless inventory or cache state proves otherwise. Generated reads prefer gateway cache state and do not poll the DALI bus for every Modbus read.
### Coils
| Offset | Address formula | Access | Function |
| ---: | --- | --- | --- |
| `0` | `1 + short * 32 + 0` | Write | On / recall max |
| `1` | `1 + short * 32 + 1` | Write | Off |
| `2` | `1 + short * 32 + 2` | Write | Recall max |
| `3` | `1 + short * 32 + 3` | Write | Recall min |
### Discrete Inputs
| Offset | Address formula | Function |
| ---: | --- | --- |
| `0` | `10001 + short * 32 + 0` | Discovered |
| `1` | `10001 + short * 32 + 1` | Online |
| `2` | `10001 + short * 32 + 2` | Supports DT1 |
| `3` | `10001 + short * 32 + 3` | Supports DT4 |
| `4` | `10001 + short * 32 + 4` | Supports DT5 |
| `5` | `10001 + short * 32 + 5` | Supports DT6 |
| `6` | `10001 + short * 32 + 6` | Supports DT8 |
| `7` | `10001 + short * 32 + 7` | Group mask known |
| `8` | `10001 + short * 32 + 8` | Actual level known |
| `9` | `10001 + short * 32 + 9` | Scene known |
| `10` | `10001 + short * 32 + 10` | Settings known |
| `16` | `10001 + short * 32 + 16` | Control gear present |
| `17` | `10001 + short * 32 + 17` | Lamp failure |
| `18` | `10001 + short * 32 + 18` | Lamp power on |
| `19` | `10001 + short * 32 + 19` | Limit error |
| `20` | `10001 + short * 32 + 20` | Fading completed |
| `21` | `10001 + short * 32 + 21` | Reset state |
| `22` | `10001 + short * 32 + 22` | Missing short address |
| `23` | `10001 + short * 32 + 23` | Power supply fault |
### Holding Registers
| Offset | Address formula | Access | Function |
| ---: | --- | --- | --- |
| `0` | `40001 + short * 32 + 0` | Read/write | Brightness |
| `1` | `40001 + short * 32 + 1` | Write, cache-read if known | Color temperature |
| `2` | `40001 + short * 32 + 2` | Read/write | Group mask |
| `3` | `40001 + short * 32 + 3` | Read/write | Power-on level |
| `4` | `40001 + short * 32 + 4` | Read/write | System-failure level |
| `5` | `40001 + short * 32 + 5` | Read/write | Minimum level |
| `6` | `40001 + short * 32 + 6` | Read/write | Maximum level |
| `7` | `40001 + short * 32 + 7` | Read/write | Fade time |
| `8` | `40001 + short * 32 + 8` | Read/write | Fade rate |
### Input Registers
| Offset | Address formula | Function |
| ---: | --- | --- |
| `0` | `30001 + short * 32 + 0` | Inventory state: `0` never seen, `1` offline, `2` online |
| `1` | `30001 + short * 32 + 1` | Primary DALI device type |
| `2` | `30001 + short * 32 + 2` | Device type mask |
| `3` | `30001 + short * 32 + 3` | Actual level |
| `4` | `30001 + short * 32 + 4` | Scene id |
| `5` | `30001 + short * 32 + 5` | Raw status |
| `6` | `30001 + short * 32 + 6` | Group mask |
| `7` | `30001 + short * 32 + 7` | Power-on level |
| `8` | `30001 + short * 32 + 8` | System-failure level |
| `9` | `30001 + short * 32 + 9` | Minimum level |
| `10` | `30001 + short * 32 + 10` | Maximum level |
| `11` | `30001 + short * 32 + 11` | Fade time |
| `12` | `30001 + short * 32 + 12` | Fade rate |
## Diagnostic Discrete Inputs
Diagnostic addresses use `12049 + short * 128 + offset`.
| Offset | Function |
| ---: | --- |
| `0` | DT1 circuit failure |
| `1` | DT1 battery duration failure |
| `2` | DT1 battery failure |
| `3` | DT1 emergency lamp failure |
| `4` | DT1 function test max delay exceeded |
| `5` | DT1 duration test max delay exceeded |
| `6` | DT1 function test failed |
| `7` | DT1 duration test failed |
| `8` | DT1 inhibit mode |
| `9` | DT1 function test result valid |
| `10` | DT1 duration test result valid |
| `11` | DT1 battery fully charged |
| `12` | DT1 function test request pending |
| `13` | DT1 duration test request pending |
| `14` | DT1 identification active |
| `15` | DT1 physically selected |
| `16` | DT1 rest mode active |
| `17` | DT1 normal mode active |
| `18` | DT1 emergency mode active |
| `19` | DT1 extended emergency mode active |
| `20` | DT1 function test in progress |
| `21` | DT1 duration test in progress |
| `22` | DT1 hardwired inhibit active |
| `23` | DT1 hardwired switch on |
| `24` | DT1 integral emergency gear |
| `25` | DT1 maintained gear |
| `26` | DT1 switched maintained gear |
| `27` | DT1 auto test capability |
| `28` | DT1 adjustable emergency level |
| `29` | DT1 hardwired inhibit supported |
| `30` | DT1 physical selection supported |
| `31` | DT1 relight in rest mode supported |
| `32` | DT4 leading edge running |
| `33` | DT4 trailing edge running |
| `34` | DT4 reference measurement running |
| `35` | DT4 non-log curve active |
| `36` | DT4 can query load over-current shutdown |
| `37` | DT4 can query open circuit |
| `38` | DT4 can query load decrease |
| `39` | DT4 can query load increase |
| `40` | DT4 can query thermal shutdown |
| `41` | DT4 can query thermal overload |
| `42` | DT4 physical selection supported |
| `43` | DT4 can query temperature |
| `44` | DT4 can query supply voltage |
| `45` | DT4 can query supply frequency |
| `46` | DT4 can query load voltage |
| `47` | DT4 can query load current |
| `48` | DT4 can query real load power |
| `49` | DT4 can query load rating |
| `50` | DT4 can query current overload |
| `51` | DT4 can select non-log curve |
| `52` | DT4 can query unsuitable load |
| `53` | DT4 load over-current shutdown |
| `54` | DT4 open circuit detected |
| `55` | DT4 load decrease detected |
| `56` | DT4 load increase detected |
| `57` | DT4 thermal shutdown |
| `58` | DT4 thermal overload reduction |
| `59` | DT4 reference failed |
| `60` | DT4 unsuitable load |
| `61` | DT4 supply voltage out of limits |
| `62` | DT4 supply frequency out of limits |
| `63` | DT4 load voltage out of limits |
| `64` | DT4 load current overload |
| `65` | DT5 output range selectable |
| `66` | DT5 pull-up selectable |
| `67` | DT5 fault detection selectable |
| `68` | DT5 mains relay |
| `69` | DT5 output level queryable |
| `70` | DT5 non-log curve supported |
| `71` | DT5 output-loss selection supported |
| `72` | DT5 selection switch supported |
| `73` | DT5 output fault detected |
| `74` | DT5 0-10V operation |
| `75` | DT5 pull-up on |
| `76` | DT5 non-log curve active |
| `77` | DT6 power supply integrated |
| `78` | DT6 LED module integrated |
| `79` | DT6 AC supply possible |
| `80` | DT6 DC supply possible |
| `81` | DT6 PWM possible |
| `82` | DT6 AM possible |
| `83` | DT6 current control possible |
| `84` | DT6 high current possible |
| `85` | DT6 can query short circuit |
| `86` | DT6 can query open circuit |
| `87` | DT6 can query load decrease |
| `88` | DT6 can query load increase |
| `89` | DT6 can query current protector |
| `90` | DT6 can query thermal shutdown |
| `91` | DT6 can query thermal overload |
| `92` | DT6 short circuit |
| `93` | DT6 open circuit |
| `94` | DT6 load decrease |
| `95` | DT6 load increase |
| `96` | DT6 current protector active |
| `97` | DT6 thermal shutdown |
| `98` | DT6 thermal overload |
| `99` | DT6 reference failed |
| `100` | DT6 PWM active |
| `101` | DT6 AM active |
| `102` | DT6 current controlled output |
| `103` | DT6 high current active |
| `104` | DT6 non-log curve active |
| `105` | DT8 xy out of range |
| `106` | DT8 color-temperature out of range |
| `107` | DT8 auto calibration active |
| `108` | DT8 auto calibration success |
| `109` | DT8 xy active |
| `110` | DT8 color-temperature active |
| `111` | DT8 primary-N active |
| `112` | DT8 RGBWAF active |
| `113` | DT8 xy capable |
| `114` | DT8 color-temperature capable |
| `115` | DT8 primary-N capable |
| `116` | DT8 RGBWAF capable |
| `117` | DT6 physical selection supported |
| `118` | DT6 current protector enabled |
| `119` | DT1 control gear failure |
## Provisioned Overrides
Provisioned bridge models are applied after the generated map. If a Modbus model uses the same space and human address as a generated point, the model replaces that generated point.
For Modbus models:
- `external.objectType` must be `coil`, `discrete_input`, `input_register`, or `holding_register`.
- `external.registerAddress` is the human address, not the zero-based wire offset.
- `external.bitIndex` exposes one bit from a numeric read result for boolean objects.
- DALI targets use short addresses `0-63`, groups as `64 + group`, and broadcast as `127`.
- DALI query/read operations must target short addresses only.
- `valueTransform` scaling, offset, rounding, and clamps are applied by the bridge engine.
Use `GET /bridge?action=modbus&gw=N` to inspect the effective generated and provisioned bindings served by a running gateway.
+43 -2
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@@ -10,12 +10,53 @@ This folder hosts the native ESP-IDF C++ rewrite of the Lua DALI gateway.
- `gateway_core/`: boot profile and top-level role bootstrap.
- `dali/`: vendored ESP-IDF DALI HAL/backend reused from LuatOS, including native raw receive fan-out.
- `dali_domain/`: native DALI domain facade over `dali_cpp` and raw frame sinks.
- `gateway_cache/`: DALI scene/group/settings/runtime cache used by controller reconciliation and protocol bridges.
- `gateway_bridge/`: per-channel bridge provisioning, command execution, protocol startup, and HTTP bridge actions.
- `openknx_idf/`: ESP-IDF port layer for the OpenKNX `gateway/knx` and `gateway/tpuart` submodules, including NVS-backed OpenKNX memory, ETS cEMI programming support, UDP multicast/unicast plumbing, and a native TP-UART interface without the Arduino framework.
- `gateway_modbus/`: gateway-owned Modbus TCP/RTU/ASCII config, generated DALI point tables, and provisioned Modbus model override dispatch.
- `gateway_bacnet/`: BACnet/IP server adapter backed by bacnet-stack, including the gateway-owned BACnet bridge model adapter.
- `gateway_ble/`: NimBLE GATT bridge for BLE transport parity on `FFF1`/`FFF2`/`FFF3`, including raw DALI notifications.
- `gateway_controller/`: Lua-compatible gateway command dispatcher, internal scene/group state, and notification fan-out.
- `gateway_network/`: HTTP `/info`, `/dali/cmd`, `/led/1`, `/led/0`, `/jq.js`, UDP port `2020` command/notify routing, Wi-Fi STA lifecycle, ESP-Touch smartconfig, setup AP mode, ESP-NOW setup ingress, and BOOT-button Wi-Fi reset for the native gateway.
- `gateway_network/`: HTTP `/info`, `/dali/cmd`, `/led/1`, `/led/0`, `/jq.js`, UDP port `2020` command/notify routing, Wi-Fi STA lifecycle, W5500 SPI Ethernet startup/teardown, ESP-Touch smartconfig, setup AP mode, ESP-NOW setup ingress, and BOOT-button Wi-Fi reset for the native gateway.
- `gateway_runtime/`: persistent runtime state, command queueing, and device info services.
- `gateway_485_control/`: optional 485 Lua control bridge for framed `0x28 0x01` commands and `0x22 ... checksum` notifications at `9600 8N1`; disabled by default because UART0 must be moved off the ESP-IDF console first.
- `gateway_usb_setup/`: optional USB Serial/JTAG setup bridge; disabled by default so USB remains available for debug at boot.
## Current status
The native rewrite now wires a shared `gateway_core` bootstrap component, a multi-channel `dali_domain` wrapper over `dali_cpp`, a local vendored `dali` hardware backend from the LuatOS ESP-IDF port with raw receive fan-out, an initial `gateway_runtime` service that provides persistent settings, device info, Lua-compatible command framing helpers, and Lua-style query command deduplication, plus a `gateway_controller` service that starts the gateway command task, dispatches core Lua gateway opcodes, and owns internal scene/group state. The gateway app also includes a `gateway_ble` NimBLE bridge that advertises a Lua-compatible GATT service and forwards `FFF3` framed notifications, incoming `FFF1`/`FFF2`/`FFF3` writes, and native raw DALI frame notifications into the matching raw channel, and a `gateway_network` service that provides the native HTTP `/info`, `GET`/`POST /dali/cmd`, `/led/1`, `/led/0`, `/jq.js`, UDP control-plane router on port `2020`, Wi-Fi STA lifecycle, ESP-Touch smartconfig credential provisioning, the Lua-style `LAMMIN_Gateway` setup AP on `192.168.3.1`, ESP-NOW setup ingress for Lua-compatible `connReq`/`connAck`/`echo`/`cmd`/`data`/`uart` packets, native raw DALI frame forwarding back to connected setup peers, and BOOT-button Wi-Fi credential clearing. Startup behavior is configured in `main/Kconfig.projbuild`: BLE is enabled by default, Wi-Fi STA, smartconfig, and ESP-NOW setup mode are disabled by default, and the built-in USB Serial/JTAG interface stays in debug mode unless the optional USB setup bridge mode is selected. Runtime settings and internal scene/group data are cached in RAM after load, skip unchanged flash writes, and batch Wi-Fi credential commits to reduce flash stalls on ESP32-S3 boards where flash and PSRAM share the SPI bus. The gateway app exposes per-channel PHY selection through `main/Kconfig.projbuild`; each channel can be disabled, bound to the native DALI GPIO HAL, or bound to a UART1/UART2 serial PHY. The checked-in `sdkconfig` is aligned with the app's custom 16 MB partition table so the Wi-Fi/BLE/network-enabled image fits the OTA app slots.
The native rewrite now wires a shared `gateway_core` bootstrap component, a multi-channel `dali_domain` wrapper over `dali_cpp`, a local vendored `dali` hardware backend from the LuatOS ESP-IDF port with raw receive fan-out, an initial `gateway_runtime` service that provides persistent settings, device info, Lua-compatible command framing helpers, and Lua-style query command deduplication, plus a `gateway_controller` service that starts the gateway command task, dispatches core Lua gateway opcodes, and owns internal scene/group state. The gateway app also includes a `gateway_ble` NimBLE bridge that advertises a Lua-compatible GATT service and forwards `FFF3` framed notifications, incoming `FFF1`/`FFF2`/`FFF3` writes, and native raw DALI frame notifications into the matching raw channel, a `gateway_network` service that provides the native HTTP `/info`, `GET`/`POST /dali/cmd`, `/led/1`, `/led/0`, `/jq.js`, UDP control-plane router on port `2020`, W5500 SPI Ethernet with DHCP, Wi-Fi STA lifecycle, ESP-Touch smartconfig credential provisioning, the Lua-style `LAMMIN_Gateway` setup AP on `192.168.3.1`, ESP-NOW setup ingress for Lua-compatible `connReq`/`connAck`/`echo`/`cmd`/`data`/`uart` packets, native raw DALI frame forwarding back to connected setup peers, and BOOT-button Wi-Fi credential clearing, and an optional `gateway_485_control` bridge that claims UART0 for Lua-compatible framed command ingress plus `0x22` notification egress when the console is moved off UART0. Startup behavior is configured in `main/Kconfig.projbuild`: BLE and wired Ethernet are enabled by default, W5500 initialization and startup probe failures are ignored by default for boards without populated Ethernet hardware by fully disabling Ethernet for that boot, Wi-Fi STA, smartconfig, and ESP-NOW setup mode are disabled by default, the built-in USB Serial/JTAG interface stays in debug mode unless the optional USB setup bridge mode is selected, and the UART0 control bridge stays disabled unless the deployment explicitly repurposes UART0 away from the ESP-IDF console. Runtime settings and internal scene/group data are cached in RAM after load, skip unchanged flash writes, and batch Wi-Fi credential commits to reduce flash stalls on ESP32-S3 boards where flash and PSRAM share the SPI bus. The gateway app exposes per-channel PHY selection through `main/Kconfig.projbuild`; each channel can be disabled, bound to the native DALI GPIO HAL, or bound to a UART1/UART2 serial PHY. The checked-in `sdkconfig` is aligned with the app's custom 16 MB partition table so the Wi-Fi/BLE/network-enabled image fits the OTA app slots.
## Modbus
Modbus TCP, RTU, and ASCII are owned by `gateway/components/gateway_modbus` and started through the per-channel bridge service. The gateway keeps the existing bridge config JSON shape with a top-level `modbus` object containing `transport`, `host`, `port`, and `unitID`, and now adds nested serial UART settings for RTU/ASCII. Parsing and runtime behavior live in the gateway project rather than in `dali_cpp`.
See `MODBUS.md` for transport setup, UART0 policy, RS485 wiring, runtime `@DALIGW` management commands, supported function codes, and the full generated address map with address formulas.
The first generated map slice creates stable points for every DALI short address `0-63` whether the device is online, offline, or never seen. Per short address, the generated map reserves a 32-point stride in each Modbus space:
- Coils: command triggers such as on, off, recall max, and recall min.
- Discrete inputs: inventory, online, supported device-type, cache-known, and base status bit positions.
- Holding registers: writable brightness, color temperature, group mask, power-on level, system-failure level, min/max level, and fade time.
- Input registers: read-only inventory state, primary type, type mask, cached actual level, scene id, raw status placeholder, group mask, and cached settings.
Unknown numeric values read as `0xFFFF`; booleans read as false unless inventory or cache state proves otherwise. Provisioned Modbus models still work as overrides at their configured Modbus point, and normal generated reads prefer gateway cache state to avoid DALI bus polling.
An extension discrete-input range starts immediately after the legacy `0-63` short-address block. It publishes decoded DALI status, failure, and feature bits as individual booleans for base status, DT1 emergency, DT4/5/6 control-gear feature/failure status, and DT8 color status/features. This keeps existing Modbus addresses stable while making bit-level diagnostics readable without consumers masking packed status registers.
## BACnet/IP
BACnet/IP is owned by `gateway/components/gateway_bacnet` and is started through the per-channel bridge service. Runtime BACnet server settings live under top-level `bacnetServer` in bridge config:
```json
{
"bacnetServer": {
"deviceInstance": 4194303,
"localAddress": "",
"udpPort": 47808
}
}
```
Provisioned BACnet models still use generic `BridgeModel` fields such as object type, object instance, property, and optional `bitIndex`. Query-style models refresh BACnet `Present_Value` from live DALI reads, and binary models with `bitIndex` expose a single packed status bit.
For discovered DALI short addresses, the gateway also mirrors the generated Modbus discrete diagnostics as BACnet binary-input objects. Object instances are allocated in a gateway-owned generated range using the channel index plus the generated Modbus discrete-input offset, so generated objects stay deterministic while avoiding the provisioned-object address space in normal deployments.
+1 -1
View File
@@ -1,6 +1,6 @@
idf_component_register(
SRCS "app_main.cpp"
REQUIRES gateway_core gateway_controller gateway_network gateway_bridge gateway_cache dali_domain gateway_runtime gateway_ble gateway_usb_setup log
REQUIRES gateway_core gateway_controller gateway_network gateway_bridge gateway_cache dali_domain gateway_runtime gateway_ble gateway_usb_setup gateway_485_control gateway_knx log
)
set_property(TARGET ${COMPONENT_LIB} PROPERTY CXX_STANDARD 17)
+354 -7
View File
@@ -380,6 +380,109 @@ config GATEWAY_SMARTCONFIG_TIMEOUT_SEC
help
Timeout passed to ESP-IDF smartconfig before provisioning restarts internally.
config GATEWAY_ETHERNET_SUPPORTED
bool "Wired Ethernet gateway transport is supported"
default y
select ETH_USE_SPI_ETHERNET
select ETH_SPI_ETHERNET_W5500
help
Enables the ESP-IDF Ethernet driver path for wired gateway networking. The
native gateway currently provisions a W5500 SPI Ethernet controller and
exposes the same HTTP, UDP, KNXnet/IP, BACnet/IP, Modbus TCP, and cloud
services over the wired netif.
config GATEWAY_START_ETHERNET_ENABLED
bool "Start wired Ethernet at startup"
depends on GATEWAY_ETHERNET_SUPPORTED
default y
help
Starts the configured W5500 Ethernet netif during boot and uses DHCP for
address assignment. Disable this when the board is built without Ethernet
hardware even though the firmware keeps Ethernet support compiled in.
config GATEWAY_ETHERNET_IGNORE_INIT_FAILURE
bool "Ignore wired Ethernet init failures"
depends on GATEWAY_START_ETHERNET_ENABLED
default y
help
Continues booting if the W5500 Ethernet controller is missing, held in
reset, miswired, or otherwise fails ESP-IDF Ethernet driver startup.
Disable this for strict hardware bring-up where Ethernet failure should
abort application startup.
menu "Gateway Wired Ethernet"
depends on GATEWAY_ETHERNET_SUPPORTED
config GATEWAY_ETHERNET_W5500_SPI_HOST
int "W5500 SPI host number"
range 1 2
default 1
help
SPI host used for the W5500 Ethernet controller. On ESP32-S3, host 1 maps
to SPI2 and host 2 maps to SPI3; do not use host 0 because it is reserved
by flash/PSRAM.
config GATEWAY_ETHERNET_W5500_SCLK_GPIO
int "W5500 SPI SCLK GPIO"
range 0 48
default 14
config GATEWAY_ETHERNET_W5500_MOSI_GPIO
int "W5500 SPI MOSI GPIO"
range 0 48
default 13
config GATEWAY_ETHERNET_W5500_MISO_GPIO
int "W5500 SPI MISO GPIO"
range 0 48
default 12
config GATEWAY_ETHERNET_W5500_CS_GPIO
int "W5500 SPI CS GPIO"
range 0 48
default 15
config GATEWAY_ETHERNET_W5500_INT_GPIO
int "W5500 interrupt GPIO"
range -1 48
default 4
help
W5500 interrupt pin. Set to -1 to disable interrupt mode and poll RX
status periodically.
config GATEWAY_ETHERNET_W5500_POLL_PERIOD_MS
int "W5500 polling period ms"
range 0 1000
default 0
help
Polling interval used when the W5500 interrupt pin is disabled. A value of
0 keeps interrupt mode when an interrupt GPIO is configured; if the
interrupt GPIO is -1, the gateway falls back to 100 ms polling.
config GATEWAY_ETHERNET_W5500_CLOCK_MHZ
int "W5500 SPI clock MHz"
range 5 80
default 36
config GATEWAY_ETHERNET_PHY_RESET_GPIO
int "Ethernet PHY reset GPIO"
range -1 48
default 5
help
GPIO used to reset the W5500 PHY. Set to -1 to disable hardware reset.
config GATEWAY_ETHERNET_PHY_ADDR
int "Ethernet PHY address"
range 0 31
default 1
config GATEWAY_ETHERNET_RX_TASK_STACK_SIZE
int "Ethernet RX task stack bytes"
range 2048 8192
default 3072
endmenu
config GATEWAY_BRIDGE_SUPPORTED
bool "dali_cpp bridge runtime is supported"
default y
@@ -387,22 +490,108 @@ config GATEWAY_BRIDGE_SUPPORTED
Enables per-channel dali_cpp bridge model provisioning, execution, and protocol adapter state.
config GATEWAY_MODBUS_BRIDGE_SUPPORTED
bool "Modbus TCP bridge is supported"
depends on GATEWAY_BRIDGE_SUPPORTED && GATEWAY_WIFI_SUPPORTED
bool "Modbus bridge is supported"
depends on GATEWAY_BRIDGE_SUPPORTED
default y
help
Enables the per-channel Modbus TCP adapter backed by DaliModbusBridge. Runtime startup still requires persisted bridge config with Modbus settings.
Enables the gateway-owned per-channel Modbus TCP, RTU, or ASCII server,
generated DALI point map, and provisioned model overrides.
config GATEWAY_START_MODBUS_BRIDGE_ENABLED
bool "Start Modbus TCP bridge at startup"
bool "Start Modbus bridge at startup"
depends on GATEWAY_MODBUS_BRIDGE_SUPPORTED
default n
help
Starts configured Modbus TCP listeners at boot. Disabled by default so ports are opened only after provisioning or explicit runtime start.
Starts the configured or Kconfig-default Modbus listener at boot. Disabled
by default so ports are opened only after provisioning or explicit runtime start.
choice GATEWAY_MODBUS_DEFAULT_TRANSPORT
prompt "Default Modbus transport"
depends on GATEWAY_MODBUS_BRIDGE_SUPPORTED
default GATEWAY_MODBUS_DEFAULT_TRANSPORT_TCP
help
Selects the default Modbus transport used before runtime bridge config is saved.
config GATEWAY_MODBUS_DEFAULT_TRANSPORT_TCP
bool "TCP server"
depends on GATEWAY_WIFI_SUPPORTED || GATEWAY_ETHERNET_SUPPORTED
config GATEWAY_MODBUS_DEFAULT_TRANSPORT_RTU
bool "RTU server on UART"
config GATEWAY_MODBUS_DEFAULT_TRANSPORT_ASCII
bool "ASCII server on UART"
endchoice
config GATEWAY_MODBUS_TCP_PORT
int "Default Modbus TCP port"
depends on GATEWAY_MODBUS_BRIDGE_SUPPORTED && GATEWAY_MODBUS_DEFAULT_TRANSPORT_TCP
range 1 65535
default 1502
config GATEWAY_MODBUS_UNIT_ID
int "Default Modbus unit id"
depends on GATEWAY_MODBUS_BRIDGE_SUPPORTED
range 0 247
default 1
help
Unit id used by the default Modbus server. A value of 0 keeps the existing
gateway wildcard behavior for incoming requests.
config GATEWAY_MODBUS_SERIAL_UART_PORT
int "Default Modbus serial UART port"
depends on GATEWAY_MODBUS_BRIDGE_SUPPORTED && (GATEWAY_MODBUS_DEFAULT_TRANSPORT_RTU || GATEWAY_MODBUS_DEFAULT_TRANSPORT_ASCII)
range 0 2
default 1
config GATEWAY_MODBUS_ALLOW_UART0
bool "Allow Modbus/setup to claim UART0"
depends on GATEWAY_MODBUS_BRIDGE_SUPPORTED && (GATEWAY_MODBUS_DEFAULT_TRANSPORT_RTU || GATEWAY_MODBUS_DEFAULT_TRANSPORT_ASCII)
default n
help
UART0 is normally reserved for the ESP-IDF console. Enable only when the
console has been moved away from UART0 or the deployment intentionally
repurposes it.
config GATEWAY_MODBUS_SERIAL_TX_PIN
int "Default Modbus serial TX pin"
depends on GATEWAY_MODBUS_BRIDGE_SUPPORTED && (GATEWAY_MODBUS_DEFAULT_TRANSPORT_RTU || GATEWAY_MODBUS_DEFAULT_TRANSPORT_ASCII)
range -1 48
default -1
config GATEWAY_MODBUS_SERIAL_RX_PIN
int "Default Modbus serial RX pin"
depends on GATEWAY_MODBUS_BRIDGE_SUPPORTED && (GATEWAY_MODBUS_DEFAULT_TRANSPORT_RTU || GATEWAY_MODBUS_DEFAULT_TRANSPORT_ASCII)
range -1 48
default -1
config GATEWAY_MODBUS_SERIAL_BAUDRATE
int "Default Modbus serial baudrate"
depends on GATEWAY_MODBUS_BRIDGE_SUPPORTED && (GATEWAY_MODBUS_DEFAULT_TRANSPORT_RTU || GATEWAY_MODBUS_DEFAULT_TRANSPORT_ASCII)
range 1200 921600
default 9600
config GATEWAY_MODBUS_SERIAL_RESPONSE_TIMEOUT_MS
int "Default Modbus serial response timeout ms"
depends on GATEWAY_MODBUS_BRIDGE_SUPPORTED && (GATEWAY_MODBUS_DEFAULT_TRANSPORT_RTU || GATEWAY_MODBUS_DEFAULT_TRANSPORT_ASCII)
range 1 1000
default 20
config GATEWAY_MODBUS_SERIAL_RS485_ENABLED
bool "Enable Modbus RS485 half-duplex mode"
depends on GATEWAY_MODBUS_BRIDGE_SUPPORTED && (GATEWAY_MODBUS_DEFAULT_TRANSPORT_RTU || GATEWAY_MODBUS_DEFAULT_TRANSPORT_ASCII)
default n
config GATEWAY_MODBUS_SERIAL_RS485_DE_PIN
int "Default Modbus RS485 DE/RTS pin"
depends on GATEWAY_MODBUS_SERIAL_RS485_ENABLED
range -1 48
default -1
config GATEWAY_BACNET_BRIDGE_SUPPORTED
bool "BACnet/IP bridge is supported"
depends on GATEWAY_BRIDGE_SUPPORTED && GATEWAY_WIFI_SUPPORTED
depends on GATEWAY_BRIDGE_SUPPORTED && (GATEWAY_WIFI_SUPPORTED || GATEWAY_ETHERNET_SUPPORTED)
default n
help
Enables BACnet bridge configuration, binding discovery, and the bacnet-stack BACnet/IP server adapter.
@@ -415,9 +604,101 @@ config GATEWAY_START_BACNET_BRIDGE_ENABLED
help
Starts configured BACnet/IP object bindings at boot. Disabled by default so the UDP BACnet/IP port is opened only after provisioning or explicit runtime start.
config GATEWAY_KNX_BRIDGE_SUPPORTED
bool "KNX to DALI bridge is supported"
depends on GATEWAY_BRIDGE_SUPPORTED && (GATEWAY_WIFI_SUPPORTED || GATEWAY_ETHERNET_SUPPORTED)
default n
help
Enables the gateway-owned KNX group-address router and KNXnet/IP TP/IP
router. Group addresses use the configured main group, middle groups as
DALI data types, and subgroups matching DALI short address structure.
config GATEWAY_START_KNX_BRIDGE_ENABLED
bool "Start KNX/IP bridge at startup"
depends on GATEWAY_KNX_BRIDGE_SUPPORTED
default n
help
Starts the KNXnet/IP tunneling/multicast listener at boot. Disabled by
default so UDP port 3671 is opened only after provisioning or explicit start.
config GATEWAY_KNX_MAIN_GROUP
int "KNX DALI main group"
depends on GATEWAY_KNX_BRIDGE_SUPPORTED
range 0 31
default 0
help
Main group used by the built-in KNX to DALI router. Middle groups select
the data type and subgroups select broadcast, short-address, or group targets.
config GATEWAY_KNX_TUNNEL_ENABLED
bool "Enable KNXnet/IP tunneling mode"
depends on GATEWAY_KNX_BRIDGE_SUPPORTED
default y
config GATEWAY_KNX_MULTICAST_ENABLED
bool "Enable KNXnet/IP multicast routing mode"
depends on GATEWAY_KNX_BRIDGE_SUPPORTED
default y
config GATEWAY_KNX_UDP_PORT
int "KNXnet/IP UDP port"
depends on GATEWAY_KNX_BRIDGE_SUPPORTED
range 1 65535
default 3671
config GATEWAY_KNX_MULTICAST_ADDRESS
string "KNXnet/IP multicast address"
depends on GATEWAY_KNX_BRIDGE_SUPPORTED && GATEWAY_KNX_MULTICAST_ENABLED
default "224.0.23.12"
config GATEWAY_KNX_INDIVIDUAL_ADDRESS
int "KNX individual address raw value"
depends on GATEWAY_KNX_BRIDGE_SUPPORTED
range 0 65535
default 4353
help
Raw 16-bit individual address advertised to KNXnet/IP tunnel clients.
The default 4353 is 1.1.1.
config GATEWAY_KNX_TP_UART_PORT
int "KNX TP UART port"
depends on GATEWAY_KNX_BRIDGE_SUPPORTED
range 0 2
default 1
config GATEWAY_KNX_TP_TX_PIN
int "KNX TP UART TX pin"
depends on GATEWAY_KNX_BRIDGE_SUPPORTED
range -1 48
default -1
config GATEWAY_KNX_TP_RX_PIN
int "KNX TP UART RX pin"
depends on GATEWAY_KNX_BRIDGE_SUPPORTED
range -1 48
default -1
config GATEWAY_KNX_TP_BAUDRATE
int "KNX TP UART baudrate"
depends on GATEWAY_KNX_BRIDGE_SUPPORTED
range 1200 921600
default 19200
config GATEWAY_BRIDGE_KNX_TASK_STACK_SIZE
int "KNX/IP bridge task stack bytes"
depends on GATEWAY_KNX_BRIDGE_SUPPORTED
range 6144 24576
default 8192
config GATEWAY_BRIDGE_KNX_TASK_PRIORITY
int "KNX/IP bridge task priority"
depends on GATEWAY_KNX_BRIDGE_SUPPORTED
range 1 10
default 5
config GATEWAY_CLOUD_BRIDGE_SUPPORTED
bool "MQTT cloud bridge is supported"
depends on GATEWAY_BRIDGE_SUPPORTED && GATEWAY_WIFI_SUPPORTED
depends on GATEWAY_BRIDGE_SUPPORTED && (GATEWAY_WIFI_SUPPORTED || GATEWAY_ETHERNET_SUPPORTED)
default y
help
Enables per-channel DaliCloudBridge provisioning and MQTT downlink execution.
@@ -493,6 +774,72 @@ config GATEWAY_USB_SETUP_READ_TIMEOUT_MS
range 1 1000
default 20
config GATEWAY_485_CONTROL_ENABLED
bool "Enable UART0 Lua control bridge"
default n
help
Claims UART0 for the Lua-compatible framed gateway control channel at boot.
This requires moving the ESP-IDF console away from UART0 and prevents Modbus
serial from using UART0 at runtime.
config GATEWAY_485_CONTROL_BAUDRATE
int "UART0 control baudrate"
depends on GATEWAY_485_CONTROL_ENABLED
range 1200 921600
default 9600
config GATEWAY_485_CONTROL_TX_PIN
int "UART0 control TX pin"
depends on GATEWAY_485_CONTROL_ENABLED
range -1 48
default -1
help
Leave at -1 to keep the current UART0 TX routing.
config GATEWAY_485_CONTROL_RX_PIN
int "UART0 control RX pin"
depends on GATEWAY_485_CONTROL_ENABLED
range -1 48
default -1
help
Leave at -1 to keep the current UART0 RX routing.
config GATEWAY_485_CONTROL_RX_BUFFER
int "UART0 control RX buffer bytes"
depends on GATEWAY_485_CONTROL_ENABLED
range 64 4096
default 256
config GATEWAY_485_CONTROL_TX_BUFFER
int "UART0 control TX buffer bytes"
depends on GATEWAY_485_CONTROL_ENABLED
range 64 4096
default 256
config GATEWAY_485_CONTROL_READ_TIMEOUT_MS
int "UART0 control read timeout ms"
depends on GATEWAY_485_CONTROL_ENABLED
range 1 1000
default 20
config GATEWAY_485_CONTROL_WRITE_TIMEOUT_MS
int "UART0 control write timeout ms"
depends on GATEWAY_485_CONTROL_ENABLED
range 1 1000
default 20
config GATEWAY_485_CONTROL_TASK_STACK_SIZE
int "UART0 control task stack bytes"
depends on GATEWAY_485_CONTROL_ENABLED
range 2048 16384
default 4096
config GATEWAY_485_CONTROL_TASK_PRIORITY
int "UART0 control task priority"
depends on GATEWAY_485_CONTROL_ENABLED
range 1 10
default 4
endmenu
menu "Gateway Network Services"
+403 -23
View File
@@ -6,6 +6,7 @@
#include "gateway_core.hpp"
#include "gateway_network.hpp"
#include "gateway_runtime.hpp"
#include "gateway_485_control.hpp"
#include "gateway_usb_setup.hpp"
#include "esp_log.h"
@@ -55,10 +56,94 @@
#define CONFIG_GATEWAY_USB_SETUP_READ_TIMEOUT_MS 20
#endif
#ifndef CONFIG_GATEWAY_485_CONTROL_BAUDRATE
#define CONFIG_GATEWAY_485_CONTROL_BAUDRATE 9600
#endif
#ifndef CONFIG_GATEWAY_485_CONTROL_TX_PIN
#define CONFIG_GATEWAY_485_CONTROL_TX_PIN -1
#endif
#ifndef CONFIG_GATEWAY_485_CONTROL_RX_PIN
#define CONFIG_GATEWAY_485_CONTROL_RX_PIN -1
#endif
#ifndef CONFIG_GATEWAY_485_CONTROL_RX_BUFFER
#define CONFIG_GATEWAY_485_CONTROL_RX_BUFFER 256
#endif
#ifndef CONFIG_GATEWAY_485_CONTROL_TX_BUFFER
#define CONFIG_GATEWAY_485_CONTROL_TX_BUFFER 256
#endif
#ifndef CONFIG_GATEWAY_485_CONTROL_READ_TIMEOUT_MS
#define CONFIG_GATEWAY_485_CONTROL_READ_TIMEOUT_MS 20
#endif
#ifndef CONFIG_GATEWAY_485_CONTROL_WRITE_TIMEOUT_MS
#define CONFIG_GATEWAY_485_CONTROL_WRITE_TIMEOUT_MS 20
#endif
#ifndef CONFIG_GATEWAY_485_CONTROL_TASK_STACK_SIZE
#define CONFIG_GATEWAY_485_CONTROL_TASK_STACK_SIZE 4096
#endif
#ifndef CONFIG_GATEWAY_485_CONTROL_TASK_PRIORITY
#define CONFIG_GATEWAY_485_CONTROL_TASK_PRIORITY 4
#endif
#ifndef CONFIG_GATEWAY_SMARTCONFIG_TIMEOUT_SEC
#define CONFIG_GATEWAY_SMARTCONFIG_TIMEOUT_SEC 60
#endif
#ifndef CONFIG_GATEWAY_ETHERNET_IGNORE_INIT_FAILURE
#define CONFIG_GATEWAY_ETHERNET_IGNORE_INIT_FAILURE 0
#endif
#ifndef CONFIG_GATEWAY_ETHERNET_W5500_SPI_HOST
#define CONFIG_GATEWAY_ETHERNET_W5500_SPI_HOST 1
#endif
#ifndef CONFIG_GATEWAY_ETHERNET_W5500_SCLK_GPIO
#define CONFIG_GATEWAY_ETHERNET_W5500_SCLK_GPIO 14
#endif
#ifndef CONFIG_GATEWAY_ETHERNET_W5500_MOSI_GPIO
#define CONFIG_GATEWAY_ETHERNET_W5500_MOSI_GPIO 13
#endif
#ifndef CONFIG_GATEWAY_ETHERNET_W5500_MISO_GPIO
#define CONFIG_GATEWAY_ETHERNET_W5500_MISO_GPIO 12
#endif
#ifndef CONFIG_GATEWAY_ETHERNET_W5500_CS_GPIO
#define CONFIG_GATEWAY_ETHERNET_W5500_CS_GPIO 15
#endif
#ifndef CONFIG_GATEWAY_ETHERNET_W5500_INT_GPIO
#define CONFIG_GATEWAY_ETHERNET_W5500_INT_GPIO 4
#endif
#ifndef CONFIG_GATEWAY_ETHERNET_W5500_POLL_PERIOD_MS
#define CONFIG_GATEWAY_ETHERNET_W5500_POLL_PERIOD_MS 0
#endif
#ifndef CONFIG_GATEWAY_ETHERNET_W5500_CLOCK_MHZ
#define CONFIG_GATEWAY_ETHERNET_W5500_CLOCK_MHZ 36
#endif
#ifndef CONFIG_GATEWAY_ETHERNET_PHY_RESET_GPIO
#define CONFIG_GATEWAY_ETHERNET_PHY_RESET_GPIO 5
#endif
#ifndef CONFIG_GATEWAY_ETHERNET_PHY_ADDR
#define CONFIG_GATEWAY_ETHERNET_PHY_ADDR 1
#endif
#ifndef CONFIG_GATEWAY_ETHERNET_RX_TASK_STACK_SIZE
#define CONFIG_GATEWAY_ETHERNET_RX_TASK_STACK_SIZE 3072
#endif
#ifndef CONFIG_GATEWAY_BRIDGE_MODBUS_TASK_STACK_SIZE
#define CONFIG_GATEWAY_BRIDGE_MODBUS_TASK_STACK_SIZE 6144
#endif
@@ -67,6 +152,38 @@
#define CONFIG_GATEWAY_BRIDGE_MODBUS_TASK_PRIORITY 4
#endif
#ifndef CONFIG_GATEWAY_MODBUS_TCP_PORT
#define CONFIG_GATEWAY_MODBUS_TCP_PORT 1502
#endif
#ifndef CONFIG_GATEWAY_MODBUS_UNIT_ID
#define CONFIG_GATEWAY_MODBUS_UNIT_ID 1
#endif
#ifndef CONFIG_GATEWAY_MODBUS_SERIAL_UART_PORT
#define CONFIG_GATEWAY_MODBUS_SERIAL_UART_PORT 1
#endif
#ifndef CONFIG_GATEWAY_MODBUS_SERIAL_TX_PIN
#define CONFIG_GATEWAY_MODBUS_SERIAL_TX_PIN -1
#endif
#ifndef CONFIG_GATEWAY_MODBUS_SERIAL_RX_PIN
#define CONFIG_GATEWAY_MODBUS_SERIAL_RX_PIN -1
#endif
#ifndef CONFIG_GATEWAY_MODBUS_SERIAL_BAUDRATE
#define CONFIG_GATEWAY_MODBUS_SERIAL_BAUDRATE 9600
#endif
#ifndef CONFIG_GATEWAY_MODBUS_SERIAL_RESPONSE_TIMEOUT_MS
#define CONFIG_GATEWAY_MODBUS_SERIAL_RESPONSE_TIMEOUT_MS 20
#endif
#ifndef CONFIG_GATEWAY_MODBUS_SERIAL_RS485_DE_PIN
#define CONFIG_GATEWAY_MODBUS_SERIAL_RS485_DE_PIN -1
#endif
#ifndef CONFIG_GATEWAY_BRIDGE_BACNET_TASK_STACK_SIZE
#define CONFIG_GATEWAY_BRIDGE_BACNET_TASK_STACK_SIZE 8192
#endif
@@ -75,6 +192,46 @@
#define CONFIG_GATEWAY_BRIDGE_BACNET_TASK_PRIORITY 5
#endif
#ifndef CONFIG_GATEWAY_BRIDGE_KNX_TASK_STACK_SIZE
#define CONFIG_GATEWAY_BRIDGE_KNX_TASK_STACK_SIZE 8192
#endif
#ifndef CONFIG_GATEWAY_BRIDGE_KNX_TASK_PRIORITY
#define CONFIG_GATEWAY_BRIDGE_KNX_TASK_PRIORITY 5
#endif
#ifndef CONFIG_GATEWAY_KNX_MAIN_GROUP
#define CONFIG_GATEWAY_KNX_MAIN_GROUP 0
#endif
#ifndef CONFIG_GATEWAY_KNX_UDP_PORT
#define CONFIG_GATEWAY_KNX_UDP_PORT 3671
#endif
#ifndef CONFIG_GATEWAY_KNX_MULTICAST_ADDRESS
#define CONFIG_GATEWAY_KNX_MULTICAST_ADDRESS "224.0.23.12"
#endif
#ifndef CONFIG_GATEWAY_KNX_INDIVIDUAL_ADDRESS
#define CONFIG_GATEWAY_KNX_INDIVIDUAL_ADDRESS 4353
#endif
#ifndef CONFIG_GATEWAY_KNX_TP_UART_PORT
#define CONFIG_GATEWAY_KNX_TP_UART_PORT 1
#endif
#ifndef CONFIG_GATEWAY_KNX_TP_TX_PIN
#define CONFIG_GATEWAY_KNX_TP_TX_PIN -1
#endif
#ifndef CONFIG_GATEWAY_KNX_TP_RX_PIN
#define CONFIG_GATEWAY_KNX_TP_RX_PIN -1
#endif
#ifndef CONFIG_GATEWAY_KNX_TP_BAUDRATE
#define CONFIG_GATEWAY_KNX_TP_BAUDRATE 19200
#endif
#ifndef CONFIG_GATEWAY_CACHE_FLUSH_INTERVAL_MS
#define CONFIG_GATEWAY_CACHE_FLUSH_INTERVAL_MS 5000
#endif
@@ -90,12 +247,24 @@ constexpr bool kWifiSupported = true;
constexpr bool kWifiSupported = false;
#endif
#ifdef CONFIG_GATEWAY_ETHERNET_SUPPORTED
constexpr bool kEthernetSupported = true;
#else
constexpr bool kEthernetSupported = false;
#endif
#ifdef CONFIG_GATEWAY_START_WIFI_STA_ENABLED
constexpr bool kWifiStartupEnabled = true;
#else
constexpr bool kWifiStartupEnabled = false;
#endif
#ifdef CONFIG_GATEWAY_START_ETHERNET_ENABLED
constexpr bool kEthernetStartupEnabled = true;
#else
constexpr bool kEthernetStartupEnabled = false;
#endif
#ifdef CONFIG_GATEWAY_BLE_SUPPORTED
constexpr bool kBleSupported = true;
#else
@@ -168,6 +337,30 @@ constexpr bool kBacnetBridgeStartupEnabled = true;
constexpr bool kBacnetBridgeStartupEnabled = false;
#endif
#ifdef CONFIG_GATEWAY_KNX_BRIDGE_SUPPORTED
constexpr bool kKnxBridgeSupported = true;
#else
constexpr bool kKnxBridgeSupported = false;
#endif
#ifdef CONFIG_GATEWAY_START_KNX_BRIDGE_ENABLED
constexpr bool kKnxBridgeStartupEnabled = true;
#else
constexpr bool kKnxBridgeStartupEnabled = false;
#endif
#ifdef CONFIG_GATEWAY_KNX_TUNNEL_ENABLED
constexpr bool kKnxTunnelEnabled = true;
#else
constexpr bool kKnxTunnelEnabled = false;
#endif
#ifdef CONFIG_GATEWAY_KNX_MULTICAST_ENABLED
constexpr bool kKnxMulticastEnabled = true;
#else
constexpr bool kKnxMulticastEnabled = false;
#endif
#ifdef CONFIG_GATEWAY_CLOUD_BRIDGE_SUPPORTED
constexpr bool kCloudBridgeSupported = true;
#else
@@ -212,6 +405,39 @@ constexpr gateway::GatewayCachePriorityMode kCachePriorityMode =
gateway::GatewayCachePriorityMode::kOutsideBusFirst;
#endif
#if defined(CONFIG_GATEWAY_MODBUS_DEFAULT_TRANSPORT_RTU) || \
defined(CONFIG_GATEWAY_MODBUS_DEFAULT_TRANSPORT_ASCII)
constexpr bool kModbusDefaultSerialTransport = true;
#else
constexpr bool kModbusDefaultSerialTransport = false;
#endif
#ifdef CONFIG_GATEWAY_MODBUS_ALLOW_UART0
constexpr bool kModbusAllowUart0 = true;
#else
constexpr bool kModbusAllowUart0 = false;
#endif
#ifdef CONFIG_GATEWAY_485_CONTROL_ENABLED
constexpr bool k485ControlEnabled = true;
#else
constexpr bool k485ControlEnabled = false;
#endif
#if defined(CONFIG_ESP_CONSOLE_UART) && defined(CONFIG_ESP_CONSOLE_UART_NUM) && CONFIG_ESP_CONSOLE_UART_NUM == 0
constexpr bool kConsoleOnUart0 = true;
#elif defined(CONFIG_CONSOLE_UART) && defined(CONFIG_CONSOLE_UART_NUM) && CONFIG_CONSOLE_UART_NUM == 0
constexpr bool kConsoleOnUart0 = true;
#else
constexpr bool kConsoleOnUart0 = false;
#endif
#ifdef CONFIG_GATEWAY_MODBUS_SERIAL_RS485_ENABLED
constexpr bool kModbusSerialRs485Enabled = true;
#else
constexpr bool kModbusSerialRs485Enabled = false;
#endif
std::unique_ptr<gateway::DaliDomainService> s_dali_domain;
std::unique_ptr<gateway::GatewayRuntime> s_runtime;
std::unique_ptr<gateway::GatewayCache> s_cache;
@@ -219,6 +445,7 @@ std::unique_ptr<gateway::GatewayController> s_controller;
std::unique_ptr<gateway::GatewayBridgeService> s_bridge;
std::unique_ptr<gateway::GatewayNetworkService> s_network;
std::unique_ptr<gateway::GatewayBleBridge> s_ble_bridge;
std::unique_ptr<gateway::Gateway485ControlBridge> s_uart0_control_bridge;
std::unique_ptr<gateway::GatewayUsbSetupBridge> s_usb_setup_bridge;
[[maybe_unused]] void LogBindError(const char* channel_name, esp_err_t err) {
@@ -238,6 +465,11 @@ struct ChannelBindingConfig {
};
bool ValidateChannelBindings() {
if (k485ControlEnabled && kConsoleOnUart0) {
ESP_LOGE(kTag, "485 control bridge requires moving the ESP-IDF console off UART0");
return false;
}
ChannelBindingConfig channels[CONFIG_GATEWAY_CHANNEL_COUNT] = {};
#if CONFIG_GATEWAY_CHANNEL1_PHY_NATIVE
@@ -322,6 +554,53 @@ bool ValidateChannelBindings() {
}
}
if (kModbusBridgeSupported && kModbusDefaultSerialTransport) {
const int modbus_uart = CONFIG_GATEWAY_MODBUS_SERIAL_UART_PORT;
if (k485ControlEnabled && modbus_uart == 0) {
ESP_LOGE(kTag, "Modbus serial UART0 conflicts with the UART0 control bridge");
return false;
}
if (modbus_uart == 0 && !kModbusAllowUart0) {
ESP_LOGE(kTag, "Modbus serial is configured on UART0, but UART0 is reserved for console");
return false;
}
if (modbus_uart == 0 && kConsoleOnUart0) {
ESP_LOGE(kTag, "Modbus serial UART0 requires moving the ESP-IDF console off UART0");
return false;
}
for (int i = 0; i < CONFIG_GATEWAY_CHANNEL_COUNT; ++i) {
if (channels[i].enabled && channels[i].serial_phy && channels[i].uart_port == modbus_uart) {
ESP_LOGE(kTag, "Modbus serial UART%d conflicts with DALI channel %d serial PHY",
modbus_uart, i + 1);
return false;
}
}
}
if (kKnxBridgeSupported) {
const int knx_uart = CONFIG_GATEWAY_KNX_TP_UART_PORT;
if (k485ControlEnabled && knx_uart == 0) {
ESP_LOGE(kTag, "KNX TP UART0 conflicts with the UART0 control bridge");
return false;
}
if (knx_uart == 0 && kConsoleOnUart0) {
ESP_LOGE(kTag, "KNX TP-UART on UART0 requires moving the ESP-IDF console off UART0");
return false;
}
if (kModbusBridgeSupported && kModbusDefaultSerialTransport &&
knx_uart == CONFIG_GATEWAY_MODBUS_SERIAL_UART_PORT) {
ESP_LOGE(kTag, "KNX TP UART%d conflicts with default Modbus serial UART", knx_uart);
return false;
}
for (int i = 0; i < CONFIG_GATEWAY_CHANNEL_COUNT; ++i) {
if (channels[i].enabled && channels[i].serial_phy && channels[i].uart_port == knx_uart) {
ESP_LOGE(kTag, "KNX TP UART%d conflicts with DALI channel %d serial PHY", knx_uart,
i + 1);
return false;
}
}
}
if (!any_enabled) {
ESP_LOGE(kTag, "no DALI PHY is configured; enable at least one native or serial channel");
return false;
@@ -363,10 +642,10 @@ esp_err_t BindConfiguredChannels(gateway::DaliDomainService& dali_domain,
channel1.query_timeout_ms =
static_cast<uint32_t>(CONFIG_GATEWAY_CHANNEL1_SERIAL_QUERY_TIMEOUT_MS);
channel1.name = runtime.gatewayName(channel1.gateway_id);
esp_err_t err = dali_domain.bindSerialBus(channel1);
LogBindError("channel1 serial DALI", err);
if (err != ESP_OK) {
return err;
esp_err_t err1 = dali_domain.bindSerialBus(channel1);
LogBindError("channel1 serial DALI", err1);
if (err1 != ESP_OK) {
return err1;
}
#endif
@@ -380,10 +659,10 @@ esp_err_t BindConfiguredChannels(gateway::DaliDomainService& dali_domain,
channel2.rx_pin = static_cast<uint8_t>(CONFIG_GATEWAY_CHANNEL2_NATIVE_RX_PIN);
channel2.baudrate = static_cast<uint32_t>(CONFIG_GATEWAY_CHANNEL2_NATIVE_BAUDRATE);
channel2.name = runtime.gatewayName(channel2.gateway_id);
esp_err_t err = dali_domain.bindHardwareBus(channel2);
LogBindError("channel2 native DALI", err);
if (err != ESP_OK) {
return err;
esp_err_t err2 = dali_domain.bindHardwareBus(channel2);
LogBindError("channel2 native DALI", err2);
if (err2 != ESP_OK) {
return err2;
}
#elif CONFIG_GATEWAY_CHANNEL2_PHY_UART1 || CONFIG_GATEWAY_CHANNEL2_PHY_UART2
gateway::DaliSerialBusConfig channel2{};
@@ -402,10 +681,10 @@ esp_err_t BindConfiguredChannels(gateway::DaliDomainService& dali_domain,
channel2.query_timeout_ms =
static_cast<uint32_t>(CONFIG_GATEWAY_CHANNEL2_SERIAL_QUERY_TIMEOUT_MS);
channel2.name = runtime.gatewayName(channel2.gateway_id);
esp_err_t err = dali_domain.bindSerialBus(channel2);
LogBindError("channel2 serial DALI", err);
if (err != ESP_OK) {
return err;
esp_err_t err2 = dali_domain.bindSerialBus(channel2);
LogBindError("channel2 serial DALI", err2);
if (err2 != ESP_OK) {
return err2;
}
#endif
#endif
@@ -423,7 +702,7 @@ extern "C" void app_main(void) {
"gateway",
kWifiSupported,
kBleSupported,
true,
kEthernetSupported,
kEspnowSetupSupported,
kUsbSetupStartupEnabled,
};
@@ -459,44 +738,131 @@ extern "C" void app_main(void) {
ESP_ERROR_CHECK(s_cache->start());
gateway::GatewayControllerConfig controller_config;
const bool network_transport_supported = profile.enable_wifi || profile.enable_eth;
controller_config.setup_supported = true;
controller_config.ble_supported = profile.enable_ble;
controller_config.wifi_supported = profile.enable_wifi;
controller_config.ip_router_supported = profile.enable_wifi || profile.enable_eth;
controller_config.ip_router_supported = network_transport_supported;
controller_config.internal_scene_supported = true;
controller_config.internal_group_supported = true;
s_controller = std::make_unique<gateway::GatewayController>(*s_runtime, *s_dali_domain,
*s_cache,
controller_config);
ESP_ERROR_CHECK(s_controller->start());
if (k485ControlEnabled) {
gateway::Gateway485ControlBridgeConfig gateway485_config;
gateway485_config.enabled = true;
gateway485_config.tx_pin = CONFIG_GATEWAY_485_CONTROL_TX_PIN;
gateway485_config.rx_pin = CONFIG_GATEWAY_485_CONTROL_RX_PIN;
gateway485_config.baudrate = static_cast<uint32_t>(CONFIG_GATEWAY_485_CONTROL_BAUDRATE);
gateway485_config.rx_buffer_size = static_cast<size_t>(CONFIG_GATEWAY_485_CONTROL_RX_BUFFER);
gateway485_config.tx_buffer_size = static_cast<size_t>(CONFIG_GATEWAY_485_CONTROL_TX_BUFFER);
gateway485_config.read_timeout_ms =
static_cast<uint32_t>(CONFIG_GATEWAY_485_CONTROL_READ_TIMEOUT_MS);
gateway485_config.write_timeout_ms =
static_cast<uint32_t>(CONFIG_GATEWAY_485_CONTROL_WRITE_TIMEOUT_MS);
gateway485_config.task_stack_size =
static_cast<uint32_t>(CONFIG_GATEWAY_485_CONTROL_TASK_STACK_SIZE);
gateway485_config.task_priority =
static_cast<UBaseType_t>(CONFIG_GATEWAY_485_CONTROL_TASK_PRIORITY);
s_uart0_control_bridge = std::make_unique<gateway::Gateway485ControlBridge>(*s_controller,
gateway485_config);
ESP_ERROR_CHECK(s_uart0_control_bridge->start());
}
ESP_ERROR_CHECK(s_controller->start());
if (kBridgeSupported) {
gateway::GatewayBridgeServiceConfig bridge_config;
bridge_config.bridge_enabled = true;
bridge_config.modbus_enabled = profile.enable_wifi && kModbusBridgeSupported;
bridge_config.modbus_startup_enabled = profile.enable_wifi && kModbusBridgeSupported &&
kModbusBridgeStartupEnabled;
bridge_config.bacnet_enabled = profile.enable_wifi && kBacnetBridgeSupported;
bridge_config.bacnet_startup_enabled = profile.enable_wifi && kBacnetBridgeSupported &&
bridge_config.modbus_enabled = kModbusBridgeSupported;
bridge_config.modbus_startup_enabled = kModbusBridgeSupported && kModbusBridgeStartupEnabled;
bridge_config.bacnet_enabled = network_transport_supported && kBacnetBridgeSupported;
bridge_config.bacnet_startup_enabled = network_transport_supported && kBacnetBridgeSupported &&
kBacnetBridgeStartupEnabled;
bridge_config.cloud_enabled = profile.enable_wifi && kCloudBridgeSupported;
bridge_config.cloud_startup_enabled = profile.enable_wifi && kCloudBridgeSupported &&
bridge_config.knx_enabled = network_transport_supported && kKnxBridgeSupported;
bridge_config.knx_startup_enabled = network_transport_supported && kKnxBridgeSupported &&
kKnxBridgeStartupEnabled;
bridge_config.cloud_enabled = network_transport_supported && kCloudBridgeSupported;
bridge_config.cloud_startup_enabled = network_transport_supported && kCloudBridgeSupported &&
kCloudBridgeStartupEnabled;
bridge_config.modbus_task_stack_size =
static_cast<uint32_t>(CONFIG_GATEWAY_BRIDGE_MODBUS_TASK_STACK_SIZE);
bridge_config.modbus_task_priority =
static_cast<UBaseType_t>(CONFIG_GATEWAY_BRIDGE_MODBUS_TASK_PRIORITY);
bridge_config.allow_modbus_uart0 = kModbusAllowUart0 && !kConsoleOnUart0 && !k485ControlEnabled;
bridge_config.allow_knx_uart0 = !kConsoleOnUart0 && !k485ControlEnabled;
#if CONFIG_GATEWAY_CHANNEL1_PHY_UART1
bridge_config.reserved_uart_ports.push_back(1);
#elif CONFIG_GATEWAY_CHANNEL1_PHY_UART2
bridge_config.reserved_uart_ports.push_back(2);
#endif
#if CONFIG_GATEWAY_CHANNEL_COUNT >= 2
#if CONFIG_GATEWAY_CHANNEL2_PHY_UART1
bridge_config.reserved_uart_ports.push_back(1);
#elif CONFIG_GATEWAY_CHANNEL2_PHY_UART2
bridge_config.reserved_uart_ports.push_back(2);
#endif
#endif
if (kModbusBridgeSupported) {
gateway::GatewayModbusConfig default_modbus;
#if defined(CONFIG_GATEWAY_MODBUS_DEFAULT_TRANSPORT_RTU)
default_modbus.transport = "rtu-server";
#elif defined(CONFIG_GATEWAY_MODBUS_DEFAULT_TRANSPORT_ASCII)
default_modbus.transport = "ascii-server";
#else
default_modbus.transport = "tcp-server";
#endif
default_modbus.port = static_cast<uint16_t>(CONFIG_GATEWAY_MODBUS_TCP_PORT);
default_modbus.unit_id = static_cast<uint8_t>(CONFIG_GATEWAY_MODBUS_UNIT_ID);
default_modbus.serial.uart_port = CONFIG_GATEWAY_MODBUS_SERIAL_UART_PORT;
default_modbus.serial.tx_pin = CONFIG_GATEWAY_MODBUS_SERIAL_TX_PIN;
default_modbus.serial.rx_pin = CONFIG_GATEWAY_MODBUS_SERIAL_RX_PIN;
default_modbus.serial.baudrate =
static_cast<uint32_t>(CONFIG_GATEWAY_MODBUS_SERIAL_BAUDRATE);
default_modbus.serial.response_timeout_ms =
static_cast<uint32_t>(CONFIG_GATEWAY_MODBUS_SERIAL_RESPONSE_TIMEOUT_MS);
default_modbus.serial.rs485.enabled = kModbusSerialRs485Enabled;
default_modbus.serial.rs485.de_pin = CONFIG_GATEWAY_MODBUS_SERIAL_RS485_DE_PIN;
bridge_config.default_modbus_config = default_modbus;
}
bridge_config.bacnet_task_stack_size =
static_cast<uint32_t>(CONFIG_GATEWAY_BRIDGE_BACNET_TASK_STACK_SIZE);
bridge_config.bacnet_task_priority =
static_cast<UBaseType_t>(CONFIG_GATEWAY_BRIDGE_BACNET_TASK_PRIORITY);
s_bridge = std::make_unique<gateway::GatewayBridgeService>(*s_dali_domain, bridge_config);
if (kKnxBridgeSupported) {
gateway::GatewayKnxConfig default_knx;
default_knx.dali_router_enabled = true;
default_knx.ip_router_enabled = true;
default_knx.tunnel_enabled = kKnxTunnelEnabled;
default_knx.multicast_enabled = kKnxMulticastEnabled;
default_knx.main_group = static_cast<uint8_t>(CONFIG_GATEWAY_KNX_MAIN_GROUP);
default_knx.udp_port = static_cast<uint16_t>(CONFIG_GATEWAY_KNX_UDP_PORT);
default_knx.multicast_address = CONFIG_GATEWAY_KNX_MULTICAST_ADDRESS;
default_knx.individual_address =
static_cast<uint16_t>(CONFIG_GATEWAY_KNX_INDIVIDUAL_ADDRESS);
default_knx.tp_uart.uart_port = CONFIG_GATEWAY_KNX_TP_UART_PORT;
default_knx.tp_uart.tx_pin = CONFIG_GATEWAY_KNX_TP_TX_PIN;
default_knx.tp_uart.rx_pin = CONFIG_GATEWAY_KNX_TP_RX_PIN;
default_knx.tp_uart.baudrate = static_cast<uint32_t>(CONFIG_GATEWAY_KNX_TP_BAUDRATE);
bridge_config.default_knx_config = default_knx;
}
bridge_config.knx_task_stack_size =
static_cast<uint32_t>(CONFIG_GATEWAY_BRIDGE_KNX_TASK_STACK_SIZE);
bridge_config.knx_task_priority =
static_cast<UBaseType_t>(CONFIG_GATEWAY_BRIDGE_KNX_TASK_PRIORITY);
s_bridge = std::make_unique<gateway::GatewayBridgeService>(*s_dali_domain, *s_cache,
bridge_config);
}
if (profile.enable_wifi || profile.enable_eth) {
gateway::GatewayNetworkServiceConfig network_config;
network_config.wifi_enabled = profile.enable_wifi && kWifiStartupEnabled;
network_config.ethernet_enabled = profile.enable_eth && kEthernetStartupEnabled;
#if CONFIG_GATEWAY_ETHERNET_IGNORE_INIT_FAILURE
network_config.ethernet_ignore_init_failure = true;
#else
network_config.ethernet_ignore_init_failure = false;
#endif
network_config.espnow_setup_enabled = profile.enable_espnow;
network_config.espnow_setup_startup_enabled =
profile.enable_espnow && kEspnowSetupStartupEnabled;
@@ -516,6 +882,20 @@ extern "C" void app_main(void) {
#endif
network_config.http_port = static_cast<uint16_t>(CONFIG_GATEWAY_NETWORK_HTTP_PORT);
network_config.udp_port = static_cast<uint16_t>(CONFIG_GATEWAY_NETWORK_UDP_PORT);
network_config.ethernet_spi_host = CONFIG_GATEWAY_ETHERNET_W5500_SPI_HOST;
network_config.ethernet_spi_sclk_gpio = CONFIG_GATEWAY_ETHERNET_W5500_SCLK_GPIO;
network_config.ethernet_spi_mosi_gpio = CONFIG_GATEWAY_ETHERNET_W5500_MOSI_GPIO;
network_config.ethernet_spi_miso_gpio = CONFIG_GATEWAY_ETHERNET_W5500_MISO_GPIO;
network_config.ethernet_spi_cs_gpio = CONFIG_GATEWAY_ETHERNET_W5500_CS_GPIO;
network_config.ethernet_spi_int_gpio = CONFIG_GATEWAY_ETHERNET_W5500_INT_GPIO;
network_config.ethernet_poll_period_ms =
static_cast<uint32_t>(CONFIG_GATEWAY_ETHERNET_W5500_POLL_PERIOD_MS);
network_config.ethernet_spi_clock_mhz =
static_cast<uint8_t>(CONFIG_GATEWAY_ETHERNET_W5500_CLOCK_MHZ);
network_config.ethernet_phy_reset_gpio = CONFIG_GATEWAY_ETHERNET_PHY_RESET_GPIO;
network_config.ethernet_phy_addr = CONFIG_GATEWAY_ETHERNET_PHY_ADDR;
network_config.ethernet_rx_task_stack_size =
static_cast<uint32_t>(CONFIG_GATEWAY_ETHERNET_RX_TASK_STACK_SIZE);
network_config.status_led_gpio = CONFIG_GATEWAY_STATUS_LED_GPIO;
network_config.boot_button_gpio = CONFIG_GATEWAY_BOOT_BUTTON_GPIO;
network_config.boot_button_long_press_ms = CONFIG_GATEWAY_BOOT_BUTTON_LONG_PRESS_MS;
+6
View File
@@ -0,0 +1,6 @@
# Name, Type, SubType, Offset, Size, Flags
nvs, data, nvs, 0x9000, 0x6000,
otadata, data, ota, 0xf000, 0x2000,
phy_init, data, phy, 0x11000, 0x1000,
factory, app, factory, 0x20000, 0x200000,
storage, data, spiffs, 0x220000, 0x180000,
1 # Name Type SubType Offset Size Flags
2 nvs data nvs 0x9000 0x6000
3 otadata data ota 0xf000 0x2000
4 phy_init data phy 0x11000 0x1000
5 factory app factory 0x20000 0x200000
6 storage data spiffs 0x220000 0x180000
+116 -25
View File
@@ -562,13 +562,13 @@ CONFIG_ESPTOOLPY_FLASHFREQ_80M=y
CONFIG_ESPTOOLPY_FLASHFREQ="80m"
# CONFIG_ESPTOOLPY_FLASHSIZE_1MB is not set
# CONFIG_ESPTOOLPY_FLASHSIZE_2MB is not set
# CONFIG_ESPTOOLPY_FLASHSIZE_4MB is not set
CONFIG_ESPTOOLPY_FLASHSIZE_4MB=y
# CONFIG_ESPTOOLPY_FLASHSIZE_8MB is not set
CONFIG_ESPTOOLPY_FLASHSIZE_16MB=y
# CONFIG_ESPTOOLPY_FLASHSIZE_16MB is not set
# CONFIG_ESPTOOLPY_FLASHSIZE_32MB is not set
# CONFIG_ESPTOOLPY_FLASHSIZE_64MB is not set
# CONFIG_ESPTOOLPY_FLASHSIZE_128MB is not set
CONFIG_ESPTOOLPY_FLASHSIZE="16MB"
CONFIG_ESPTOOLPY_FLASHSIZE="4MB"
# CONFIG_ESPTOOLPY_HEADER_FLASHSIZE_UPDATE is not set
CONFIG_ESPTOOLPY_BEFORE_RESET=y
# CONFIG_ESPTOOLPY_BEFORE_NORESET is not set
@@ -587,8 +587,8 @@ CONFIG_ESPTOOLPY_MONITOR_BAUD=115200
# CONFIG_PARTITION_TABLE_TWO_OTA is not set
# CONFIG_PARTITION_TABLE_TWO_OTA_LARGE is not set
CONFIG_PARTITION_TABLE_CUSTOM=y
CONFIG_PARTITION_TABLE_CUSTOM_FILENAME="partitions.csv"
CONFIG_PARTITION_TABLE_FILENAME="partitions.csv"
CONFIG_PARTITION_TABLE_CUSTOM_FILENAME="partitions-4M-single.csv"
CONFIG_PARTITION_TABLE_FILENAME="partitions-4M-single.csv"
CONFIG_PARTITION_TABLE_OFFSET=0x8000
CONFIG_PARTITION_TABLE_MD5=y
# end of Partition Table
@@ -602,20 +602,32 @@ CONFIG_GATEWAY_CHANNEL_COUNT=2
# Gateway Channel 1
#
CONFIG_GATEWAY_CHANNEL1_GW_ID=3
CONFIG_GATEWAY_CHANNEL1_PHY_DISABLED=y
# CONFIG_GATEWAY_CHANNEL1_PHY_DISABLED is not set
# CONFIG_GATEWAY_CHANNEL1_PHY_NATIVE is not set
# CONFIG_GATEWAY_CHANNEL1_PHY_UART1 is not set
CONFIG_GATEWAY_CHANNEL1_PHY_UART1=y
# CONFIG_GATEWAY_CHANNEL1_PHY_UART2 is not set
CONFIG_GATEWAY_CHANNEL1_SERIAL_TX_PIN=1
CONFIG_GATEWAY_CHANNEL1_SERIAL_RX_PIN=2
CONFIG_GATEWAY_CHANNEL1_SERIAL_BAUDRATE=9600
CONFIG_GATEWAY_CHANNEL1_SERIAL_RX_BUFFER=512
CONFIG_GATEWAY_CHANNEL1_SERIAL_TX_BUFFER=512
CONFIG_GATEWAY_CHANNEL1_SERIAL_QUERY_TIMEOUT_MS=100
# end of Gateway Channel 1
#
# Gateway Channel 2
#
CONFIG_GATEWAY_CHANNEL2_GW_ID=4
CONFIG_GATEWAY_CHANNEL2_PHY_DISABLED=y
# CONFIG_GATEWAY_CHANNEL2_PHY_DISABLED is not set
# CONFIG_GATEWAY_CHANNEL2_PHY_NATIVE is not set
# CONFIG_GATEWAY_CHANNEL2_PHY_UART1 is not set
# CONFIG_GATEWAY_CHANNEL2_PHY_UART2 is not set
CONFIG_GATEWAY_CHANNEL2_PHY_UART2=y
CONFIG_GATEWAY_CHANNEL2_SERIAL_TX_PIN=6
CONFIG_GATEWAY_CHANNEL2_SERIAL_RX_PIN=7
CONFIG_GATEWAY_CHANNEL2_SERIAL_BAUDRATE=9600
CONFIG_GATEWAY_CHANNEL2_SERIAL_RX_BUFFER=512
CONFIG_GATEWAY_CHANNEL2_SERIAL_TX_BUFFER=512
CONFIG_GATEWAY_CHANNEL2_SERIAL_QUERY_TIMEOUT_MS=100
# end of Gateway Channel 2
#
@@ -644,11 +656,50 @@ CONFIG_GATEWAY_SMARTCONFIG_SUPPORTED=y
# CONFIG_GATEWAY_START_ESPNOW_SETUP_ENABLED is not set
# CONFIG_GATEWAY_START_SMARTCONFIG_ENABLED is not set
CONFIG_GATEWAY_SMARTCONFIG_TIMEOUT_SEC=60
CONFIG_GATEWAY_ETHERNET_SUPPORTED=y
CONFIG_GATEWAY_START_ETHERNET_ENABLED=y
CONFIG_GATEWAY_ETHERNET_IGNORE_INIT_FAILURE=y
#
# Gateway Wired Ethernet
#
CONFIG_GATEWAY_ETHERNET_W5500_SPI_HOST=1
CONFIG_GATEWAY_ETHERNET_W5500_SCLK_GPIO=14
CONFIG_GATEWAY_ETHERNET_W5500_MOSI_GPIO=13
CONFIG_GATEWAY_ETHERNET_W5500_MISO_GPIO=12
CONFIG_GATEWAY_ETHERNET_W5500_CS_GPIO=15
CONFIG_GATEWAY_ETHERNET_W5500_INT_GPIO=4
CONFIG_GATEWAY_ETHERNET_W5500_POLL_PERIOD_MS=0
CONFIG_GATEWAY_ETHERNET_W5500_CLOCK_MHZ=36
CONFIG_GATEWAY_ETHERNET_PHY_RESET_GPIO=5
CONFIG_GATEWAY_ETHERNET_PHY_ADDR=1
CONFIG_GATEWAY_ETHERNET_RX_TASK_STACK_SIZE=3072
# end of Gateway Wired Ethernet
CONFIG_GATEWAY_BRIDGE_SUPPORTED=y
CONFIG_GATEWAY_MODBUS_BRIDGE_SUPPORTED=y
# CONFIG_GATEWAY_START_MODBUS_BRIDGE_ENABLED is not set
CONFIG_GATEWAY_MODBUS_DEFAULT_TRANSPORT_TCP=y
# CONFIG_GATEWAY_MODBUS_DEFAULT_TRANSPORT_RTU is not set
# CONFIG_GATEWAY_MODBUS_DEFAULT_TRANSPORT_ASCII is not set
CONFIG_GATEWAY_MODBUS_TCP_PORT=1502
CONFIG_GATEWAY_MODBUS_UNIT_ID=1
CONFIG_GATEWAY_BACNET_BRIDGE_SUPPORTED=y
# CONFIG_GATEWAY_START_BACNET_BRIDGE_ENABLED is not set
CONFIG_GATEWAY_KNX_BRIDGE_SUPPORTED=y
CONFIG_GATEWAY_START_KNX_BRIDGE_ENABLED=y
CONFIG_GATEWAY_KNX_MAIN_GROUP=0
CONFIG_GATEWAY_KNX_TUNNEL_ENABLED=y
CONFIG_GATEWAY_KNX_MULTICAST_ENABLED=y
CONFIG_GATEWAY_KNX_UDP_PORT=3671
CONFIG_GATEWAY_KNX_MULTICAST_ADDRESS="224.0.23.12"
CONFIG_GATEWAY_KNX_INDIVIDUAL_ADDRESS=4353
CONFIG_GATEWAY_KNX_TP_UART_PORT=0
CONFIG_GATEWAY_KNX_TP_TX_PIN=-1
CONFIG_GATEWAY_KNX_TP_RX_PIN=-1
CONFIG_GATEWAY_KNX_TP_BAUDRATE=19200
CONFIG_GATEWAY_BRIDGE_KNX_TASK_STACK_SIZE=8192
CONFIG_GATEWAY_BRIDGE_KNX_TASK_PRIORITY=5
CONFIG_GATEWAY_CLOUD_BRIDGE_SUPPORTED=y
# CONFIG_GATEWAY_START_CLOUD_BRIDGE_ENABLED is not set
CONFIG_GATEWAY_BRIDGE_MODBUS_TASK_STACK_SIZE=6144
@@ -657,6 +708,7 @@ CONFIG_GATEWAY_BRIDGE_BACNET_TASK_STACK_SIZE=8192
CONFIG_GATEWAY_BRIDGE_BACNET_TASK_PRIORITY=5
CONFIG_GATEWAY_USB_STARTUP_DEBUG_JTAG=y
# CONFIG_GATEWAY_USB_STARTUP_SETUP_SERIAL is not set
# CONFIG_GATEWAY_485_CONTROL_ENABLED is not set
# end of Gateway Startup Services
#
@@ -717,6 +769,7 @@ CONFIG_COMPILER_ORPHAN_SECTIONS_WARNING=y
#
# CONFIG_APPTRACE_DEST_JTAG is not set
CONFIG_APPTRACE_DEST_NONE=y
# CONFIG_APPTRACE_DEST_UART0 is not set
# CONFIG_APPTRACE_DEST_UART1 is not set
# CONFIG_APPTRACE_DEST_UART2 is not set
# CONFIG_APPTRACE_DEST_USB_CDC is not set
@@ -743,6 +796,7 @@ CONFIG_BT_CONTROLLER_ENABLED=y
# General
#
CONFIG_BT_NIMBLE_MEM_ALLOC_MODE_INTERNAL=y
# CONFIG_BT_NIMBLE_MEM_ALLOC_MODE_EXTERNAL is not set
# CONFIG_BT_NIMBLE_MEM_ALLOC_MODE_DEFAULT is not set
CONFIG_BT_NIMBLE_PINNED_TO_CORE=0
CONFIG_BT_NIMBLE_PINNED_TO_CORE_0=y
@@ -1495,8 +1549,8 @@ CONFIG_ESP32S3_UNIVERSAL_MAC_ADDRESSES=4
#
# Sleep Config
#
# CONFIG_ESP_SLEEP_POWER_DOWN_FLASH is not set
CONFIG_ESP_SLEEP_FLASH_LEAKAGE_WORKAROUND=y
CONFIG_ESP_SLEEP_PSRAM_LEAKAGE_WORKAROUND=y
CONFIG_ESP_SLEEP_MSPI_NEED_ALL_IO_PU=y
CONFIG_ESP_SLEEP_RTC_BUS_ISO_WORKAROUND=y
CONFIG_ESP_SLEEP_GPIO_RESET_WORKAROUND=y
@@ -1635,7 +1689,40 @@ CONFIG_PM_RESTORE_CACHE_TAGMEM_AFTER_LIGHT_SLEEP=y
#
# ESP PSRAM
#
# CONFIG_SPIRAM is not set
CONFIG_SPIRAM=y
#
# SPI RAM config
#
CONFIG_SPIRAM_MODE_QUAD=y
# CONFIG_SPIRAM_MODE_OCT is not set
CONFIG_SPIRAM_TYPE_AUTO=y
# CONFIG_SPIRAM_TYPE_ESPPSRAM16 is not set
# CONFIG_SPIRAM_TYPE_ESPPSRAM32 is not set
# CONFIG_SPIRAM_TYPE_ESPPSRAM64 is not set
CONFIG_SPIRAM_CLK_IO=30
CONFIG_SPIRAM_CS_IO=26
# CONFIG_SPIRAM_XIP_FROM_PSRAM is not set
# CONFIG_SPIRAM_FETCH_INSTRUCTIONS is not set
# CONFIG_SPIRAM_RODATA is not set
# CONFIG_SPIRAM_SPEED_120M is not set
CONFIG_SPIRAM_SPEED_80M=y
# CONFIG_SPIRAM_SPEED_40M is not set
CONFIG_SPIRAM_SPEED=80
CONFIG_SPIRAM_BOOT_HW_INIT=y
CONFIG_SPIRAM_BOOT_INIT=y
CONFIG_SPIRAM_PRE_CONFIGURE_MEMORY_PROTECTION=y
CONFIG_SPIRAM_IGNORE_NOTFOUND=y
# CONFIG_SPIRAM_USE_MEMMAP is not set
# CONFIG_SPIRAM_USE_CAPS_ALLOC is not set
CONFIG_SPIRAM_USE_MALLOC=y
CONFIG_SPIRAM_MEMTEST=y
CONFIG_SPIRAM_MALLOC_ALWAYSINTERNAL=16384
CONFIG_SPIRAM_TRY_ALLOCATE_WIFI_LWIP=y
CONFIG_SPIRAM_MALLOC_RESERVE_INTERNAL=32768
# CONFIG_SPIRAM_ALLOW_BSS_SEG_EXTERNAL_MEMORY is not set
# CONFIG_SPIRAM_ALLOW_NOINIT_SEG_EXTERNAL_MEMORY is not set
# end of SPI RAM config
# end of ESP PSRAM
#
@@ -1726,18 +1813,15 @@ CONFIG_ESP_MAIN_TASK_AFFINITY_CPU0=y
# CONFIG_ESP_MAIN_TASK_AFFINITY_NO_AFFINITY is not set
CONFIG_ESP_MAIN_TASK_AFFINITY=0x0
CONFIG_ESP_MINIMAL_SHARED_STACK_SIZE=2048
CONFIG_ESP_CONSOLE_UART_DEFAULT=y
# CONFIG_ESP_CONSOLE_UART_DEFAULT is not set
# CONFIG_ESP_CONSOLE_USB_CDC is not set
# CONFIG_ESP_CONSOLE_USB_SERIAL_JTAG is not set
CONFIG_ESP_CONSOLE_USB_SERIAL_JTAG=y
# CONFIG_ESP_CONSOLE_UART_CUSTOM is not set
# CONFIG_ESP_CONSOLE_NONE is not set
# CONFIG_ESP_CONSOLE_SECONDARY_NONE is not set
CONFIG_ESP_CONSOLE_SECONDARY_USB_SERIAL_JTAG=y
CONFIG_ESP_CONSOLE_SECONDARY_NONE=y
CONFIG_ESP_CONSOLE_USB_SERIAL_JTAG_ENABLED=y
CONFIG_ESP_CONSOLE_UART=y
CONFIG_ESP_CONSOLE_UART_NUM=0
CONFIG_ESP_CONSOLE_ROM_SERIAL_PORT_NUM=0
CONFIG_ESP_CONSOLE_UART_BAUDRATE=115200
CONFIG_ESP_CONSOLE_UART_NUM=-1
CONFIG_ESP_CONSOLE_ROM_SERIAL_PORT_NUM=4
CONFIG_ESP_INT_WDT=y
CONFIG_ESP_INT_WDT_TIMEOUT_MS=300
CONFIG_ESP_INT_WDT_CHECK_CPU1=y
@@ -1890,6 +1974,7 @@ CONFIG_FATFS_CODEPAGE=437
CONFIG_FATFS_FS_LOCK=0
CONFIG_FATFS_TIMEOUT_MS=10000
CONFIG_FATFS_PER_FILE_CACHE=y
CONFIG_FATFS_ALLOC_PREFER_EXTRAM=y
# CONFIG_FATFS_USE_FASTSEEK is not set
CONFIG_FATFS_USE_STRFUNC_NONE=y
# CONFIG_FATFS_USE_STRFUNC_WITHOUT_CRLF_CONV is not set
@@ -1967,6 +2052,7 @@ CONFIG_FREERTOS_SYSTICK_USES_SYSTIMER=y
#
# Extra
#
CONFIG_FREERTOS_TASK_CREATE_ALLOW_EXT_MEM=y
# end of Extra
CONFIG_FREERTOS_PORT=y
@@ -2251,6 +2337,7 @@ CONFIG_LWIP_HOOK_IP6_INPUT_DEFAULT=y
# mbedTLS
#
CONFIG_MBEDTLS_INTERNAL_MEM_ALLOC=y
# CONFIG_MBEDTLS_EXTERNAL_MEM_ALLOC is not set
# CONFIG_MBEDTLS_DEFAULT_MEM_ALLOC is not set
# CONFIG_MBEDTLS_CUSTOM_MEM_ALLOC is not set
CONFIG_MBEDTLS_ASYMMETRIC_CONTENT_LEN=y
@@ -2407,12 +2494,15 @@ CONFIG_LIBC_TIME_SYSCALL_USE_RTC_HRT=y
CONFIG_LIBC_ASSERT_BUFFER_SIZE=200
# end of LibC
CONFIG_STDATOMIC_S32C1I_SPIRAM_WORKAROUND=y
#
# NVS
#
# CONFIG_NVS_ENCRYPTION is not set
# CONFIG_NVS_ASSERT_ERROR_CHECK is not set
# CONFIG_NVS_LEGACY_DUP_KEYS_COMPATIBILITY is not set
# CONFIG_NVS_ALLOCATE_CACHE_IN_SPIRAM is not set
# end of NVS
#
@@ -2756,6 +2846,7 @@ CONFIG_ESP32_APPTRACE_LOCK_ENABLE=y
# CONFIG_BLUEDROID_ENABLED is not set
CONFIG_NIMBLE_ENABLED=y
CONFIG_NIMBLE_MEM_ALLOC_MODE_INTERNAL=y
# CONFIG_NIMBLE_MEM_ALLOC_MODE_EXTERNAL is not set
# CONFIG_NIMBLE_MEM_ALLOC_MODE_DEFAULT is not set
CONFIG_NIMBLE_PINNED_TO_CORE=0
CONFIG_NIMBLE_PINNED_TO_CORE_0=y
@@ -2804,7 +2895,6 @@ CONFIG_POST_EVENTS_FROM_IRAM_ISR=y
CONFIG_GDBSTUB_SUPPORT_TASKS=y
CONFIG_GDBSTUB_MAX_TASKS=32
# CONFIG_OTA_ALLOW_HTTP is not set
# CONFIG_ESP_SYSTEM_PD_FLASH is not set
CONFIG_ESP32S3_DEEP_SLEEP_WAKEUP_DELAY=2000
CONFIG_ESP_SLEEP_DEEP_SLEEP_WAKEUP_DELAY=2000
CONFIG_ESP32S3_RTC_CLK_SRC_INT_RC=y
@@ -2840,7 +2930,9 @@ CONFIG_ESP32_PHY_MAX_TX_POWER=20
# CONFIG_ESP32_REDUCE_PHY_TX_POWER is not set
CONFIG_ESP_SYSTEM_PM_POWER_DOWN_CPU=y
CONFIG_PM_POWER_DOWN_TAGMEM_IN_LIGHT_SLEEP=y
# CONFIG_ESP32S3_SPIRAM_SUPPORT is not set
CONFIG_ESP32S3_SPIRAM_SUPPORT=y
CONFIG_DEFAULT_PSRAM_CLK_IO=30
CONFIG_DEFAULT_PSRAM_CS_IO=26
# CONFIG_ESP32S3_DEFAULT_CPU_FREQ_80 is not set
CONFIG_ESP32S3_DEFAULT_CPU_FREQ_160=y
# CONFIG_ESP32S3_DEFAULT_CPU_FREQ_240 is not set
@@ -2848,13 +2940,11 @@ CONFIG_ESP32S3_DEFAULT_CPU_FREQ_MHZ=160
CONFIG_SYSTEM_EVENT_QUEUE_SIZE=32
CONFIG_SYSTEM_EVENT_TASK_STACK_SIZE=2304
CONFIG_MAIN_TASK_STACK_SIZE=3584
CONFIG_CONSOLE_UART_DEFAULT=y
# CONFIG_CONSOLE_UART_DEFAULT is not set
# CONFIG_CONSOLE_UART_CUSTOM is not set
# CONFIG_CONSOLE_UART_NONE is not set
# CONFIG_ESP_CONSOLE_UART_NONE is not set
CONFIG_CONSOLE_UART=y
CONFIG_CONSOLE_UART_NUM=0
CONFIG_CONSOLE_UART_BAUDRATE=115200
CONFIG_CONSOLE_UART_NUM=-1
CONFIG_INT_WDT=y
CONFIG_INT_WDT_TIMEOUT_MS=300
CONFIG_INT_WDT_CHECK_CPU1=y
@@ -2907,6 +2997,7 @@ CONFIG_TIMER_TASK_PRIORITY=1
CONFIG_TIMER_TASK_STACK_DEPTH=2048
CONFIG_TIMER_QUEUE_LENGTH=10
# CONFIG_ENABLE_STATIC_TASK_CLEAN_UP_HOOK is not set
CONFIG_SPIRAM_ALLOW_STACK_EXTERNAL_MEMORY=y
# CONFIG_HAL_ASSERTION_SILIENT is not set
# CONFIG_L2_TO_L3_COPY is not set
CONFIG_ESP_GRATUITOUS_ARP=y
+4 -1
View File
@@ -12,4 +12,7 @@ CONFIG_BT_NIMBLE_ENABLED=y
CONFIG_ETH_ENABLED=y
CONFIG_ETH_USE_SPI_ETHERNET=y
CONFIG_ETH_SPI_ETHERNET_W5500=y
CONFIG_ETH_SPI_ETHERNET_W5500=y
CONFIG_GATEWAY_ETHERNET_SUPPORTED=y
CONFIG_GATEWAY_START_ETHERNET_ENABLED=y
CONFIG_GATEWAY_ETHERNET_IGNORE_INIT_FAILURE=y
+155 -15
View File
@@ -562,13 +562,13 @@ CONFIG_ESPTOOLPY_FLASHFREQ_80M=y
CONFIG_ESPTOOLPY_FLASHFREQ="80m"
# CONFIG_ESPTOOLPY_FLASHSIZE_1MB is not set
# CONFIG_ESPTOOLPY_FLASHSIZE_2MB is not set
# CONFIG_ESPTOOLPY_FLASHSIZE_4MB is not set
CONFIG_ESPTOOLPY_FLASHSIZE_4MB=y
# CONFIG_ESPTOOLPY_FLASHSIZE_8MB is not set
CONFIG_ESPTOOLPY_FLASHSIZE_16MB=y
# CONFIG_ESPTOOLPY_FLASHSIZE_16MB is not set
# CONFIG_ESPTOOLPY_FLASHSIZE_32MB is not set
# CONFIG_ESPTOOLPY_FLASHSIZE_64MB is not set
# CONFIG_ESPTOOLPY_FLASHSIZE_128MB is not set
CONFIG_ESPTOOLPY_FLASHSIZE="16MB"
CONFIG_ESPTOOLPY_FLASHSIZE="4MB"
# CONFIG_ESPTOOLPY_HEADER_FLASHSIZE_UPDATE is not set
CONFIG_ESPTOOLPY_BEFORE_RESET=y
# CONFIG_ESPTOOLPY_BEFORE_NORESET is not set
@@ -587,8 +587,8 @@ CONFIG_ESPTOOLPY_MONITOR_BAUD=115200
# CONFIG_PARTITION_TABLE_TWO_OTA is not set
# CONFIG_PARTITION_TABLE_TWO_OTA_LARGE is not set
CONFIG_PARTITION_TABLE_CUSTOM=y
CONFIG_PARTITION_TABLE_CUSTOM_FILENAME="partitions.csv"
CONFIG_PARTITION_TABLE_FILENAME="partitions.csv"
CONFIG_PARTITION_TABLE_CUSTOM_FILENAME="partitions-4M-single.csv"
CONFIG_PARTITION_TABLE_FILENAME="partitions-4M-single.csv"
CONFIG_PARTITION_TABLE_OFFSET=0x8000
CONFIG_PARTITION_TABLE_MD5=y
# end of Partition Table
@@ -596,7 +596,109 @@ CONFIG_PARTITION_TABLE_MD5=y
#
# Gateway App
#
CONFIG_GATEWAY_CHANNEL_COUNT=2
#
# Gateway Channel 1
#
CONFIG_GATEWAY_CHANNEL1_GW_ID=3
# CONFIG_GATEWAY_CHANNEL1_PHY_DISABLED is not set
# CONFIG_GATEWAY_CHANNEL1_PHY_NATIVE is not set
CONFIG_GATEWAY_CHANNEL1_PHY_UART1=y
# CONFIG_GATEWAY_CHANNEL1_PHY_UART2 is not set
CONFIG_GATEWAY_CHANNEL1_SERIAL_TX_PIN=1
CONFIG_GATEWAY_CHANNEL1_SERIAL_RX_PIN=2
CONFIG_GATEWAY_CHANNEL1_SERIAL_BAUDRATE=9600
CONFIG_GATEWAY_CHANNEL1_SERIAL_RX_BUFFER=512
CONFIG_GATEWAY_CHANNEL1_SERIAL_TX_BUFFER=512
CONFIG_GATEWAY_CHANNEL1_SERIAL_QUERY_TIMEOUT_MS=100
# end of Gateway Channel 1
#
# Gateway Channel 2
#
CONFIG_GATEWAY_CHANNEL2_GW_ID=4
# CONFIG_GATEWAY_CHANNEL2_PHY_DISABLED is not set
# CONFIG_GATEWAY_CHANNEL2_PHY_NATIVE is not set
# CONFIG_GATEWAY_CHANNEL2_PHY_UART1 is not set
CONFIG_GATEWAY_CHANNEL2_PHY_UART2=y
CONFIG_GATEWAY_CHANNEL2_SERIAL_TX_PIN=6
CONFIG_GATEWAY_CHANNEL2_SERIAL_RX_PIN=7
CONFIG_GATEWAY_CHANNEL2_SERIAL_BAUDRATE=9600
CONFIG_GATEWAY_CHANNEL2_SERIAL_RX_BUFFER=512
CONFIG_GATEWAY_CHANNEL2_SERIAL_TX_BUFFER=512
CONFIG_GATEWAY_CHANNEL2_SERIAL_QUERY_TIMEOUT_MS=100
# end of Gateway Channel 2
#
# Gateway Cache
#
CONFIG_GATEWAY_CACHE_SUPPORTED=y
CONFIG_GATEWAY_CACHE_START_ENABLED=y
CONFIG_GATEWAY_CACHE_RECONCILIATION_ENABLED=y
# CONFIG_GATEWAY_CACHE_FULL_STATE_MIRROR is not set
CONFIG_GATEWAY_CACHE_FLUSH_INTERVAL_MS=5000
CONFIG_GATEWAY_CACHE_OUTSIDE_BUS_FIRST=y
# CONFIG_GATEWAY_CACHE_LOCAL_GATEWAY_FIRST is not set
# end of Gateway Cache
# CONFIG_GATEWAY_ENABLE_DALI_BUS is not set
#
# Gateway Startup Services
#
CONFIG_GATEWAY_BLE_SUPPORTED=y
CONFIG_GATEWAY_START_BLE_ENABLED=y
CONFIG_GATEWAY_WIFI_SUPPORTED=y
# CONFIG_GATEWAY_START_WIFI_STA_ENABLED is not set
CONFIG_GATEWAY_ESPNOW_SETUP_SUPPORTED=y
CONFIG_GATEWAY_SMARTCONFIG_SUPPORTED=y
# CONFIG_GATEWAY_START_ESPNOW_SETUP_ENABLED is not set
# CONFIG_GATEWAY_START_SMARTCONFIG_ENABLED is not set
CONFIG_GATEWAY_SMARTCONFIG_TIMEOUT_SEC=60
CONFIG_GATEWAY_BRIDGE_SUPPORTED=y
CONFIG_GATEWAY_MODBUS_BRIDGE_SUPPORTED=y
# CONFIG_GATEWAY_START_MODBUS_BRIDGE_ENABLED is not set
CONFIG_GATEWAY_MODBUS_DEFAULT_TRANSPORT_TCP=y
# CONFIG_GATEWAY_MODBUS_DEFAULT_TRANSPORT_RTU is not set
# CONFIG_GATEWAY_MODBUS_DEFAULT_TRANSPORT_ASCII is not set
CONFIG_GATEWAY_MODBUS_TCP_PORT=1502
CONFIG_GATEWAY_MODBUS_UNIT_ID=1
CONFIG_GATEWAY_BACNET_BRIDGE_SUPPORTED=y
# CONFIG_GATEWAY_START_BACNET_BRIDGE_ENABLED is not set
# CONFIG_GATEWAY_KNX_BRIDGE_SUPPORTED is not set
CONFIG_GATEWAY_CLOUD_BRIDGE_SUPPORTED=y
# CONFIG_GATEWAY_START_CLOUD_BRIDGE_ENABLED is not set
CONFIG_GATEWAY_BRIDGE_MODBUS_TASK_STACK_SIZE=6144
CONFIG_GATEWAY_BRIDGE_MODBUS_TASK_PRIORITY=4
CONFIG_GATEWAY_BRIDGE_BACNET_TASK_STACK_SIZE=8192
CONFIG_GATEWAY_BRIDGE_BACNET_TASK_PRIORITY=5
CONFIG_GATEWAY_USB_STARTUP_DEBUG_JTAG=y
# CONFIG_GATEWAY_USB_STARTUP_SETUP_SERIAL is not set
CONFIG_GATEWAY_485_CONTROL_ENABLED=y
CONFIG_GATEWAY_485_CONTROL_BAUDRATE=9600
CONFIG_GATEWAY_485_CONTROL_TX_PIN=-1
CONFIG_GATEWAY_485_CONTROL_RX_PIN=-1
CONFIG_GATEWAY_485_CONTROL_RX_BUFFER=256
CONFIG_GATEWAY_485_CONTROL_TX_BUFFER=256
CONFIG_GATEWAY_485_CONTROL_READ_TIMEOUT_MS=20
CONFIG_GATEWAY_485_CONTROL_WRITE_TIMEOUT_MS=20
CONFIG_GATEWAY_485_CONTROL_TASK_STACK_SIZE=4096
CONFIG_GATEWAY_485_CONTROL_TASK_PRIORITY=4
# end of Gateway Startup Services
#
# Gateway Network Services
#
CONFIG_GATEWAY_NETWORK_HTTP_ENABLED=y
CONFIG_GATEWAY_NETWORK_HTTP_PORT=80
CONFIG_GATEWAY_NETWORK_UDP_ROUTER_ENABLED=y
CONFIG_GATEWAY_NETWORK_UDP_PORT=2020
CONFIG_GATEWAY_STATUS_LED_GPIO=-1
CONFIG_GATEWAY_BOOT_BUTTON_GPIO=0
CONFIG_GATEWAY_BOOT_BUTTON_ACTIVE_LOW=y
CONFIG_GATEWAY_BOOT_BUTTON_LONG_PRESS_MS=3000
# end of Gateway Network Services
# end of Gateway App
#
@@ -643,6 +745,7 @@ CONFIG_COMPILER_ORPHAN_SECTIONS_WARNING=y
#
# CONFIG_APPTRACE_DEST_JTAG is not set
CONFIG_APPTRACE_DEST_NONE=y
# CONFIG_APPTRACE_DEST_UART0 is not set
# CONFIG_APPTRACE_DEST_UART1 is not set
# CONFIG_APPTRACE_DEST_UART2 is not set
# CONFIG_APPTRACE_DEST_USB_CDC is not set
@@ -669,6 +772,7 @@ CONFIG_BT_CONTROLLER_ENABLED=y
# General
#
CONFIG_BT_NIMBLE_MEM_ALLOC_MODE_INTERNAL=y
# CONFIG_BT_NIMBLE_MEM_ALLOC_MODE_EXTERNAL is not set
# CONFIG_BT_NIMBLE_MEM_ALLOC_MODE_DEFAULT is not set
CONFIG_BT_NIMBLE_PINNED_TO_CORE=0
CONFIG_BT_NIMBLE_PINNED_TO_CORE_0=y
@@ -1421,8 +1525,8 @@ CONFIG_ESP32S3_UNIVERSAL_MAC_ADDRESSES=4
#
# Sleep Config
#
# CONFIG_ESP_SLEEP_POWER_DOWN_FLASH is not set
CONFIG_ESP_SLEEP_FLASH_LEAKAGE_WORKAROUND=y
CONFIG_ESP_SLEEP_PSRAM_LEAKAGE_WORKAROUND=y
CONFIG_ESP_SLEEP_MSPI_NEED_ALL_IO_PU=y
CONFIG_ESP_SLEEP_RTC_BUS_ISO_WORKAROUND=y
CONFIG_ESP_SLEEP_GPIO_RESET_WORKAROUND=y
@@ -1561,7 +1665,40 @@ CONFIG_PM_RESTORE_CACHE_TAGMEM_AFTER_LIGHT_SLEEP=y
#
# ESP PSRAM
#
# CONFIG_SPIRAM is not set
CONFIG_SPIRAM=y
#
# SPI RAM config
#
CONFIG_SPIRAM_MODE_QUAD=y
# CONFIG_SPIRAM_MODE_OCT is not set
CONFIG_SPIRAM_TYPE_AUTO=y
# CONFIG_SPIRAM_TYPE_ESPPSRAM16 is not set
# CONFIG_SPIRAM_TYPE_ESPPSRAM32 is not set
# CONFIG_SPIRAM_TYPE_ESPPSRAM64 is not set
CONFIG_SPIRAM_CLK_IO=30
CONFIG_SPIRAM_CS_IO=26
# CONFIG_SPIRAM_XIP_FROM_PSRAM is not set
# CONFIG_SPIRAM_FETCH_INSTRUCTIONS is not set
# CONFIG_SPIRAM_RODATA is not set
# CONFIG_SPIRAM_SPEED_120M is not set
CONFIG_SPIRAM_SPEED_80M=y
# CONFIG_SPIRAM_SPEED_40M is not set
CONFIG_SPIRAM_SPEED=80
CONFIG_SPIRAM_BOOT_HW_INIT=y
CONFIG_SPIRAM_BOOT_INIT=y
CONFIG_SPIRAM_PRE_CONFIGURE_MEMORY_PROTECTION=y
CONFIG_SPIRAM_IGNORE_NOTFOUND=y
# CONFIG_SPIRAM_USE_MEMMAP is not set
# CONFIG_SPIRAM_USE_CAPS_ALLOC is not set
CONFIG_SPIRAM_USE_MALLOC=y
CONFIG_SPIRAM_MEMTEST=y
CONFIG_SPIRAM_MALLOC_ALWAYSINTERNAL=16384
CONFIG_SPIRAM_TRY_ALLOCATE_WIFI_LWIP=y
CONFIG_SPIRAM_MALLOC_RESERVE_INTERNAL=32768
# CONFIG_SPIRAM_ALLOW_BSS_SEG_EXTERNAL_MEMORY is not set
# CONFIG_SPIRAM_ALLOW_NOINIT_SEG_EXTERNAL_MEMORY is not set
# end of SPI RAM config
# end of ESP PSRAM
#
@@ -1652,18 +1789,15 @@ CONFIG_ESP_MAIN_TASK_AFFINITY_CPU0=y
# CONFIG_ESP_MAIN_TASK_AFFINITY_NO_AFFINITY is not set
CONFIG_ESP_MAIN_TASK_AFFINITY=0x0
CONFIG_ESP_MINIMAL_SHARED_STACK_SIZE=2048
CONFIG_ESP_CONSOLE_UART_DEFAULT=y
# CONFIG_ESP_CONSOLE_UART_DEFAULT is not set
# CONFIG_ESP_CONSOLE_USB_CDC is not set
# CONFIG_ESP_CONSOLE_USB_SERIAL_JTAG is not set
CONFIG_ESP_CONSOLE_USB_SERIAL_JTAG=y
# CONFIG_ESP_CONSOLE_UART_CUSTOM is not set
# CONFIG_ESP_CONSOLE_NONE is not set
# CONFIG_ESP_CONSOLE_SECONDARY_NONE is not set
CONFIG_ESP_CONSOLE_SECONDARY_USB_SERIAL_JTAG=y
CONFIG_ESP_CONSOLE_SECONDARY_NONE=y
CONFIG_ESP_CONSOLE_USB_SERIAL_JTAG_ENABLED=y
CONFIG_ESP_CONSOLE_UART=y
CONFIG_ESP_CONSOLE_UART_NUM=0
CONFIG_ESP_CONSOLE_ROM_SERIAL_PORT_NUM=0
CONFIG_ESP_CONSOLE_UART_BAUDRATE=115200
CONFIG_ESP_CONSOLE_UART_NUM=-1
CONFIG_ESP_CONSOLE_ROM_SERIAL_PORT_NUM=4
CONFIG_ESP_INT_WDT=y
CONFIG_ESP_INT_WDT_TIMEOUT_MS=300
CONFIG_ESP_INT_WDT_CHECK_CPU1=y
@@ -1816,6 +1950,7 @@ CONFIG_FATFS_CODEPAGE=437
CONFIG_FATFS_FS_LOCK=0
CONFIG_FATFS_TIMEOUT_MS=10000
CONFIG_FATFS_PER_FILE_CACHE=y
CONFIG_FATFS_ALLOC_PREFER_EXTRAM=y
# CONFIG_FATFS_USE_FASTSEEK is not set
CONFIG_FATFS_USE_STRFUNC_NONE=y
# CONFIG_FATFS_USE_STRFUNC_WITHOUT_CRLF_CONV is not set
@@ -1893,6 +2028,7 @@ CONFIG_FREERTOS_SYSTICK_USES_SYSTIMER=y
#
# Extra
#
CONFIG_FREERTOS_TASK_CREATE_ALLOW_EXT_MEM=y
# end of Extra
CONFIG_FREERTOS_PORT=y
@@ -2177,6 +2313,7 @@ CONFIG_LWIP_HOOK_IP6_INPUT_DEFAULT=y
# mbedTLS
#
CONFIG_MBEDTLS_INTERNAL_MEM_ALLOC=y
# CONFIG_MBEDTLS_EXTERNAL_MEM_ALLOC is not set
# CONFIG_MBEDTLS_DEFAULT_MEM_ALLOC is not set
# CONFIG_MBEDTLS_CUSTOM_MEM_ALLOC is not set
CONFIG_MBEDTLS_ASYMMETRIC_CONTENT_LEN=y
@@ -2333,12 +2470,15 @@ CONFIG_LIBC_TIME_SYSCALL_USE_RTC_HRT=y
CONFIG_LIBC_ASSERT_BUFFER_SIZE=200
# end of LibC
CONFIG_STDATOMIC_S32C1I_SPIRAM_WORKAROUND=y
#
# NVS
#
# CONFIG_NVS_ENCRYPTION is not set
# CONFIG_NVS_ASSERT_ERROR_CHECK is not set
# CONFIG_NVS_LEGACY_DUP_KEYS_COMPATIBILITY is not set
# CONFIG_NVS_ALLOCATE_CACHE_IN_SPIRAM is not set
# end of NVS
#
Submodule
+1
Submodule bacnet_stack added at b1f4389f31
@@ -134,9 +134,14 @@ class DaliDomainService {
std::optional<DaliDomainSnapshot> discoverDeviceTypes(
uint8_t gateway_id, int short_address, const std::vector<int>& fallback_types = {},
int max_next_types = 16) const;
std::optional<DaliDomainSnapshot> baseStatusSnapshot(uint8_t gateway_id,
int short_address) const;
std::optional<DaliDomainSnapshot> dt1Snapshot(uint8_t gateway_id, int short_address) const;
std::optional<DaliDomainSnapshot> dt4Snapshot(uint8_t gateway_id, int short_address) const;
std::optional<DaliDomainSnapshot> dt5Snapshot(uint8_t gateway_id, int short_address) const;
std::optional<DaliDomainSnapshot> dt6Snapshot(uint8_t gateway_id, int short_address) const;
std::optional<DaliDomainSnapshot> dt8StatusSnapshot(uint8_t gateway_id,
int short_address) const;
std::optional<DaliDomainSnapshot> dt8SceneColorReport(uint8_t gateway_id, int short_address,
int scene) const;
std::optional<DaliDomainSnapshot> dt8PowerOnLevelColorReport(uint8_t gateway_id,
+157 -1
View File
@@ -451,7 +451,7 @@ std::optional<DaliDomainSnapshot> DaliDomainService::discoverDeviceTypes(
if (channel == nullptr || channel->dali == nullptr) {
return std::nullopt;
}
const std::vector<int> fallback = fallback_types.empty() ? std::vector<int>{4, 5, 6, 8}
const std::vector<int> fallback = fallback_types.empty() ? std::vector<int>{1, 4, 5, 6, 8}
: fallback_types;
auto discovery = channel->dali->base.discoverDeviceTypes(short_address, fallback,
max_next_types);
@@ -466,6 +466,113 @@ std::optional<DaliDomainSnapshot> DaliDomainService::discoverDeviceTypes(
return snapshot;
}
std::optional<DaliDomainSnapshot> DaliDomainService::baseStatusSnapshot(
uint8_t gateway_id, int short_address) const {
const auto* channel = findChannelByGateway(gateway_id);
if (channel == nullptr || channel->dali == nullptr) {
return std::nullopt;
}
const auto raw_status = channel->dali->base.getStatus(short_address);
if (!raw_status.has_value()) {
return std::nullopt;
}
const DaliStatus status = DaliStatus::fromByte(static_cast<uint8_t>(raw_status.value()));
auto snapshot = MakeSnapshot(gateway_id, short_address, "base_status");
snapshot.ints["rawStatus"] = raw_status.value() & 0xFF;
snapshot.bools["controlGearPresent"] = status.controlGearPresent;
snapshot.bools["lampFailure"] = status.lampFailure;
snapshot.bools["lampPowerOn"] = status.lampPowerOn;
snapshot.bools["limitError"] = status.limitError;
snapshot.bools["fadingCompleted"] = status.fadingCompleted;
snapshot.bools["resetState"] = status.resetState;
snapshot.bools["missingShortAddress"] = status.missingShortAddress;
snapshot.bools["powerSupplyFault"] = status.psFault;
snapshot.bools["psFault"] = status.psFault;
return snapshot;
}
std::optional<DaliDomainSnapshot> DaliDomainService::dt1Snapshot(uint8_t gateway_id,
int short_address) const {
const auto* channel = findChannelByGateway(gateway_id);
if (channel == nullptr || channel->dali == nullptr) {
return std::nullopt;
}
const auto detailed = channel->dali->dt1.getDT1TestStatusDetailed(short_address);
if (!detailed.has_value()) {
return std::nullopt;
}
auto snapshot = MakeSnapshot(gateway_id, short_address, "dt1");
PutOptionalInt(snapshot, "failureStatusRaw", detailed->failureStatus);
PutOptionalInt(snapshot, "emergencyStatusRaw", detailed->emergencyStatus);
PutOptionalInt(snapshot, "emergencyModeRaw", detailed->emergencyMode);
PutOptionalInt(snapshot, "featuresRaw", detailed->feature);
PutOptionalInt(snapshot, "deviceStatusRaw", detailed->deviceStatus);
snapshot.bools["testInProgress"] = detailed->testInProgress;
snapshot.bools["lampFailure"] = detailed->lampFailure;
snapshot.bools["batteryFailure"] = detailed->batteryFailure;
snapshot.bools["functionTestActive"] = detailed->functionTestActive;
snapshot.bools["durationTestActive"] = detailed->durationTestActive;
snapshot.bools["testDone"] = detailed->testDone;
snapshot.bools["identifyActive"] = detailed->identifyActive;
snapshot.bools["physicalSelectionActive"] = detailed->physicalSelectionActive;
snapshot.bools["circuitFailure"] = detailed->circuitFailure;
snapshot.bools["batteryDurationFailure"] = detailed->batteryDurationFailure;
snapshot.bools["emergencyLampFailure"] = detailed->emergencyLampFailure;
snapshot.bools["functionTestMaxDelayExceeded"] = detailed->functionTestMaxDelayExceeded;
snapshot.bools["durationTestMaxDelayExceeded"] = detailed->durationTestMaxDelayExceeded;
snapshot.bools["functionTestFailed"] = detailed->functionTestFailed;
snapshot.bools["durationTestFailed"] = detailed->durationTestFailed;
snapshot.bools["functionTestResultValid"] = detailed->functionTestResultValid;
snapshot.bools["durationTestResultValid"] = detailed->durationTestResultValid;
snapshot.bools["batteryFullyCharged"] = detailed->batteryFullyCharged;
snapshot.bools["functionTestPending"] = detailed->functionTestPending;
snapshot.bools["durationTestPending"] = detailed->durationTestPending;
snapshot.bools["restModeActive"] = detailed->restModeActive;
snapshot.bools["normalModeActive"] = detailed->normalModeActive;
snapshot.bools["emergencyModeActive"] = detailed->emergencyModeActive;
snapshot.bools["extendedEmergencyModeActive"] = detailed->extendedEmergencyModeActive;
snapshot.bools["hardwiredInhibitActive"] = detailed->hardwiredInhibitActive;
snapshot.bools["hardwiredSwitchOn"] = detailed->hardwiredSwitchOn;
snapshot.bools["supportsAutoTest"] = detailed->supportsAutoTest;
snapshot.bools["supportsAdjustableEmergencyLevel"] = detailed->supportsAdjustableEmergencyLevel;
if (detailed->emergencyStatus.has_value()) {
const DaliDT1EmergencyStatus status(detailed->emergencyStatus.value());
snapshot.bools["inhibitMode"] = status.inhibitMode();
snapshot.bools["functionTestRequestPending"] = status.functionTestRequestPending();
snapshot.bools["durationTestRequestPending"] = status.durationTestRequestPending();
snapshot.bools["identificationActive"] = status.identificationActive();
snapshot.bools["physicallySelected"] = status.physicallySelected();
}
if (detailed->emergencyMode.has_value()) {
const DaliDT1EmergencyMode mode(detailed->emergencyMode.value());
snapshot.bools["functionTestInProgress"] = mode.functionTestInProgress();
snapshot.bools["durationTestInProgress"] = mode.durationTestInProgress();
}
if (detailed->feature.has_value()) {
const DaliDT1Features features(detailed->feature.value());
snapshot.bools["integralEmergencyControlGear"] = features.integralEmergencyControlGear();
snapshot.bools["maintainedControlGear"] = features.maintainedControlGear();
snapshot.bools["switchedMaintainedControlGear"] = features.switchedMaintainedControlGear();
snapshot.bools["autoTestCapability"] = features.autoTestCapability();
snapshot.bools["adjustableEmergencyLevel"] = features.adjustableEmergencyLevel();
snapshot.bools["hardwiredInhibitSupported"] = features.hardwiredInhibitSupported();
snapshot.bools["physicalSelectionSupported"] = features.physicalSelectionSupported();
snapshot.bools["relightInRestModeSupported"] = features.relightInRestModeSupported();
}
if (detailed->deviceStatus.has_value()) {
const DaliDT1DeviceStatus status(detailed->deviceStatus.value());
snapshot.bools["controlGearFailure"] = status.controlGearFailure();
snapshot.bools["controlGearOk"] = status.controlGearOk();
snapshot.bools["lampPoweredByEmergencyGear"] = status.lampPoweredByEmergencyGear();
snapshot.bools["deviceResetState"] = status.resetState();
snapshot.bools["deviceMissingShortAddress"] = status.missingShortAddress();
}
return snapshot;
}
std::optional<DaliDomainSnapshot> DaliDomainService::dt4Snapshot(uint8_t gateway_id,
int short_address) const {
const auto* channel = findChannelByGateway(gateway_id);
@@ -506,15 +613,27 @@ std::optional<DaliDomainSnapshot> DaliDomainService::dt4Snapshot(uint8_t gateway
snapshot.ints["featuresRaw2"] = features->raw2();
snapshot.ints["featuresRaw3"] = features->raw3();
snapshot.ints["dimmingMethodCode"] = features->dimmingMethodCode();
snapshot.bools["canQueryLoadOverCurrentShutdown"] =
features->canQueryLoadOverCurrentShutdown();
snapshot.bools["canQueryOpenCircuitDetection"] = features->canQueryOpenCircuitDetection();
snapshot.bools["canQueryLoadDecrease"] = features->canQueryLoadDecrease();
snapshot.bools["canQueryLoadIncrease"] = features->canQueryLoadIncrease();
snapshot.bools["canQueryThermalShutdown"] = features->canQueryThermalShutdown();
snapshot.bools["canQueryThermalOverloadReduction"] =
features->canQueryThermalOverloadReduction();
snapshot.bools["canQueryTemperature"] = features->canQueryTemperature();
snapshot.bools["canQuerySupplyVoltage"] = features->canQuerySupplyVoltage();
snapshot.bools["canQuerySupplyFrequency"] = features->canQuerySupplyFrequency();
snapshot.bools["canQueryLoadVoltage"] = features->canQueryLoadVoltage();
snapshot.bools["canQueryLoadCurrent"] = features->canQueryLoadCurrent();
snapshot.bools["canQueryRealLoadPower"] = features->canQueryRealLoadPower();
snapshot.bools["canQueryLoadRating"] = features->canQueryLoadRating();
snapshot.bools["canQueryCurrentOverloadReduction"] =
features->canQueryCurrentOverloadReduction();
snapshot.bools["physicalSelectionSupported"] = features->physicalSelectionSupported();
snapshot.bools["canSelectNonLogarithmicDimmingCurve"] =
features->canSelectNonLogarithmicDimmingCurve();
snapshot.bools["canQueryUnsuitableLoad"] = features->canQueryUnsuitableLoad();
}
if (const auto failure = dt4.getFailureStatus(short_address)) {
snapshot.ints["failureRaw1"] = failure->raw1();
@@ -526,7 +645,10 @@ std::optional<DaliDomainSnapshot> DaliDomainService::dt4Snapshot(uint8_t gateway
snapshot.bools["thermalShutdown"] = failure->thermalShutdown();
snapshot.bools["thermalOverloadReduction"] = failure->thermalOverloadReduction();
snapshot.bools["referenceMeasurementFailedStatus"] = failure->referenceMeasurementFailed();
snapshot.bools["loadUnsuitableForSelectedMethod"] =
failure->loadUnsuitableForSelectedMethod();
snapshot.bools["supplyVoltageOutOfLimits"] = failure->supplyVoltageOutOfLimits();
snapshot.bools["supplyFrequencyOutOfLimits"] = failure->supplyFrequencyOutOfLimits();
snapshot.bools["loadVoltageOutOfLimits"] = failure->loadVoltageOutOfLimits();
snapshot.bools["loadCurrentOverloadReduction"] = failure->loadCurrentOverloadReduction();
}
@@ -637,6 +759,40 @@ std::optional<DaliDomainSnapshot> DaliDomainService::dt6Snapshot(uint8_t gateway
return snapshot;
}
std::optional<DaliDomainSnapshot> DaliDomainService::dt8StatusSnapshot(
uint8_t gateway_id, int short_address) const {
const auto* channel = findChannelByGateway(gateway_id);
if (channel == nullptr || channel->dali == nullptr) {
return std::nullopt;
}
auto snapshot = MakeSnapshot(gateway_id, short_address, "dt8_status");
bool has_data = false;
if (const auto status = channel->dali->dt8.getColorStatus(short_address)) {
has_data = true;
snapshot.ints["colorStatusRaw"] = status->raw();
snapshot.bools["xyOutOfRange"] = status->xyOutOfRange();
snapshot.bools["ctOutOfRange"] = status->ctOutOfRange();
snapshot.bools["autoCalibrationActive"] = status->autoCalibrationActive();
snapshot.bools["autoCalibrationSuccess"] = status->autoCalibrationSuccess();
snapshot.bools["xyActive"] = status->xyActive();
snapshot.bools["ctActive"] = status->ctActive();
snapshot.bools["primaryNActive"] = status->primaryNActive();
snapshot.bools["rgbwafActive"] = status->rgbwafActive();
}
if (const auto features = channel->dali->dt8.getColorTypeFeature(short_address)) {
has_data = true;
snapshot.ints["colorTypeFeaturesRaw"] = features->features();
snapshot.ints["primaryCount"] = features->primaryCount();
snapshot.ints["rgbwafChannels"] = features->rgbwafChannels();
snapshot.bools["xyCapable"] = features->xyCapable();
snapshot.bools["ctCapable"] = features->ctCapable();
snapshot.bools["primaryNCapable"] = features->primaryNCapable();
snapshot.bools["rgbwafCapable"] = features->rgbwafCapable();
}
return has_data ? std::optional<DaliDomainSnapshot>(std::move(snapshot)) : std::nullopt;
}
std::optional<DaliDomainSnapshot> DaliDomainService::dt8SceneColorReport(
uint8_t gateway_id, int short_address, int scene) const {
const auto* channel = findChannelByGateway(gateway_id);
@@ -0,0 +1,7 @@
idf_component_register(
SRCS "src/gateway_485_control.cpp"
INCLUDE_DIRS "include"
REQUIRES esp_driver_uart freertos gateway_controller log
)
set_property(TARGET ${COMPONENT_LIB} PROPERTY CXX_STANDARD 17)
@@ -0,0 +1,47 @@
#pragma once
#include <cstddef>
#include <cstdint>
#include <vector>
#include "esp_err.h"
#include "freertos/FreeRTOS.h"
#include "freertos/task.h"
namespace gateway {
class GatewayController;
struct Gateway485ControlBridgeConfig {
bool enabled{false};
int tx_pin{-1};
int rx_pin{-1};
uint32_t baudrate{9600};
size_t rx_buffer_size{256};
size_t tx_buffer_size{256};
uint32_t read_timeout_ms{20};
uint32_t write_timeout_ms{20};
uint32_t task_stack_size{4096};
UBaseType_t task_priority{4};
};
class Gateway485ControlBridge {
public:
Gateway485ControlBridge(GatewayController& controller,
Gateway485ControlBridgeConfig config = {});
esp_err_t start();
private:
static void TaskEntry(void* arg);
void taskLoop();
void handleBytes(const uint8_t* data, size_t len);
void handleGatewayNotification(const std::vector<uint8_t>& frame);
GatewayController& controller_;
Gateway485ControlBridgeConfig config_;
TaskHandle_t task_handle_{nullptr};
bool started_{false};
};
} // namespace gateway
@@ -0,0 +1,134 @@
#include "gateway_485_control.hpp"
#include "gateway_controller.hpp"
#include "driver/uart.h"
#include "esp_log.h"
#include <algorithm>
namespace gateway {
namespace {
constexpr const char* kTag = "gateway_485";
constexpr uart_port_t kControlUart = UART_NUM_0;
constexpr size_t kCommandFrameMinLen = 7;
int EffectivePin(int pin) {
return pin >= 0 ? pin : UART_PIN_NO_CHANGE;
}
} // namespace
Gateway485ControlBridge::Gateway485ControlBridge(GatewayController& controller,
Gateway485ControlBridgeConfig config)
: controller_(controller), config_(config) {}
esp_err_t Gateway485ControlBridge::start() {
if (started_) {
return ESP_OK;
}
if (!config_.enabled) {
ESP_LOGI(kTag, "UART0 control bridge disabled");
return ESP_OK;
}
if (uart_is_driver_installed(kControlUart)) {
ESP_LOGE(kTag, "UART0 driver already installed; move console or other users off UART0");
return ESP_ERR_INVALID_STATE;
}
uart_config_t uart_config{};
uart_config.baud_rate = static_cast<int>(config_.baudrate);
uart_config.data_bits = UART_DATA_8_BITS;
uart_config.parity = UART_PARITY_DISABLE;
uart_config.stop_bits = UART_STOP_BITS_1;
uart_config.flow_ctrl = UART_HW_FLOWCTRL_DISABLE;
uart_config.source_clk = UART_SCLK_DEFAULT;
esp_err_t err = uart_param_config(kControlUart, &uart_config);
if (err != ESP_OK) {
ESP_LOGE(kTag, "failed to configure UART0: %s", esp_err_to_name(err));
return err;
}
err = uart_set_pin(kControlUart, EffectivePin(config_.tx_pin), EffectivePin(config_.rx_pin),
UART_PIN_NO_CHANGE, UART_PIN_NO_CHANGE);
if (err != ESP_OK) {
ESP_LOGE(kTag, "failed to set UART0 pins: %s", esp_err_to_name(err));
return err;
}
err = uart_driver_install(kControlUart, static_cast<int>(config_.rx_buffer_size),
static_cast<int>(config_.tx_buffer_size), 0, nullptr, 0);
if (err != ESP_OK) {
ESP_LOGE(kTag, "failed to install UART0 driver: %s", esp_err_to_name(err));
return err;
}
controller_.addNotificationSink(
[this](const std::vector<uint8_t>& frame) { handleGatewayNotification(frame); });
const BaseType_t created = xTaskCreate(&Gateway485ControlBridge::TaskEntry,
"gateway_485_ctrl",
static_cast<uint32_t>(config_.task_stack_size), this,
config_.task_priority, &task_handle_);
if (created != pdPASS) {
uart_driver_delete(kControlUart);
task_handle_ = nullptr;
ESP_LOGE(kTag, "failed to create 485 control task");
return ESP_ERR_NO_MEM;
}
started_ = true;
ESP_LOGI(kTag, "485 control bridge started baud=%lu", static_cast<unsigned long>(config_.baudrate));
return ESP_OK;
}
void Gateway485ControlBridge::TaskEntry(void* arg) {
static_cast<Gateway485ControlBridge*>(arg)->taskLoop();
}
void Gateway485ControlBridge::taskLoop() {
std::vector<uint8_t> read_buffer(std::max<size_t>(config_.rx_buffer_size, 64));
std::vector<uint8_t> pending;
pending.reserve(std::max<size_t>(config_.rx_buffer_size, 64));
const TickType_t timeout = pdMS_TO_TICKS(config_.read_timeout_ms);
while (true) {
const int read_len = uart_read_bytes(kControlUart, read_buffer.data(), read_buffer.size(), timeout);
if (read_len > 0) {
pending.insert(pending.end(), read_buffer.begin(), read_buffer.begin() + read_len);
continue;
}
if (!pending.empty()) {
handleBytes(pending.data(), pending.size());
pending.clear();
}
}
}
void Gateway485ControlBridge::handleBytes(const uint8_t* data, size_t len) {
if (data == nullptr || len < kCommandFrameMinLen) {
return;
}
if (data[0] != 0x28 || data[1] != 0x01) {
ESP_LOGD(kTag, "ignored non-gateway UART0 burst len=%u", static_cast<unsigned>(len));
return;
}
controller_.enqueueCommandFrame(std::vector<uint8_t>(data, data + len));
}
void Gateway485ControlBridge::handleGatewayNotification(const std::vector<uint8_t>& frame) {
if (!started_ || frame.empty()) {
return;
}
const int written = uart_write_bytes(kControlUart, frame.data(), frame.size());
if (written < 0 || static_cast<size_t>(written) != frame.size()) {
ESP_LOGW(kTag, "failed to write UART0 notification len=%u", static_cast<unsigned>(frame.size()));
return;
}
if (uart_wait_tx_done(kControlUart, pdMS_TO_TICKS(config_.write_timeout_ms)) != ESP_OK) {
ESP_LOGW(kTag, "timed out flushing UART0 notification len=%u", static_cast<unsigned>(frame.size()));
}
}
} // namespace gateway
+6 -1
View File
@@ -6,7 +6,7 @@ if(NOT CONFIG_GATEWAY_BACNET_BRIDGE_SUPPORTED)
return()
endif()
set(BACNET_STACK_ROOT "${CMAKE_CURRENT_LIST_DIR}/../../../bacnet-stack")
set(BACNET_STACK_ROOT "${CMAKE_CURRENT_LIST_DIR}/../../bacnet_stack")
set(BACNET_SRC_ROOT "${BACNET_STACK_ROOT}/src")
set(BACNET_ESP32_PORT "${BACNET_STACK_ROOT}/ports/esp32/src")
idf_build_get_property(IDF_PATH IDF_PATH)
@@ -49,11 +49,15 @@ set(BACNET_BASIC_SRCS
"${BACNET_SRC_ROOT}/bacnet/basic/binding/address.c"
"${BACNET_SRC_ROOT}/bacnet/basic/npdu/h_npdu.c"
"${BACNET_SRC_ROOT}/bacnet/basic/npdu/s_router.c"
"${BACNET_SRC_ROOT}/bacnet/basic/object/ai.c"
"${BACNET_SRC_ROOT}/bacnet/basic/object/ao.c"
"${BACNET_SRC_ROOT}/bacnet/basic/object/av.c"
"${BACNET_SRC_ROOT}/bacnet/basic/object/bi.c"
"${BACNET_SRC_ROOT}/bacnet/basic/object/bo.c"
"${BACNET_SRC_ROOT}/bacnet/basic/object/bv.c"
"${BACNET_SRC_ROOT}/bacnet/basic/object/device.c"
"${BACNET_SRC_ROOT}/bacnet/basic/object/ms-input.c"
"${BACNET_SRC_ROOT}/bacnet/basic/object/mso.c"
"${BACNET_SRC_ROOT}/bacnet/basic/object/msv.c"
"${BACNET_SRC_ROOT}/bacnet/basic/service/h_apdu.c"
"${BACNET_SRC_ROOT}/bacnet/basic/service/h_cov.c"
@@ -88,6 +92,7 @@ set(BACNET_PORT_SRCS
idf_component_register(
SRCS
"src/gateway_bacnet_bridge.cpp"
"src/gateway_bacnet.cpp"
"src/gateway_bacnet_stack_port.c"
"src/bip_socket_lwip.cpp"
@@ -9,6 +9,7 @@
#include <cstdint>
#include <functional>
#include <optional>
#include <string>
#include <vector>
@@ -30,6 +31,9 @@ struct GatewayBacnetObjectBinding {
BridgeObjectType object_type{BridgeObjectType::unknown};
uint32_t object_instance{0};
std::string property{"presentValue"};
bool out_of_service{false};
uint32_t reliability{0};
bool readable{false};
};
struct GatewayBacnetServerStatus {
@@ -44,13 +48,19 @@ using GatewayBacnetWriteCallback =
std::function<bool(BridgeObjectType object_type, uint32_t object_instance,
const std::string& property, const DaliValue& value)>;
using GatewayBacnetReadCallback =
std::function<std::optional<DaliValue>(BridgeObjectType object_type,
uint32_t object_instance,
const std::string& property)>;
class GatewayBacnetServer {
public:
static GatewayBacnetServer& instance();
esp_err_t registerChannel(uint8_t gateway_id, const GatewayBacnetServerConfig& config,
std::vector<GatewayBacnetObjectBinding> bindings,
GatewayBacnetWriteCallback write_callback);
GatewayBacnetWriteCallback write_callback,
GatewayBacnetReadCallback read_callback = nullptr);
GatewayBacnetServerStatus status() const;
bool configCompatible(const GatewayBacnetServerConfig& config) const;
bool handleWrite(BridgeObjectType object_type, uint32_t object_instance,
@@ -68,6 +78,7 @@ class GatewayBacnetServer {
esp_err_t startStackLocked(const GatewayBacnetServerConfig& config);
esp_err_t rebuildObjectsLocked();
void refreshPresentValues();
static void TaskEntry(void* arg);
void taskLoop();
@@ -0,0 +1,56 @@
#pragma once
#include "bridge.hpp"
#include <cstdint>
#include <optional>
#include <string>
#include <vector>
namespace gateway {
struct GatewayBacnetBridgeConfig {
uint32_t deviceInstance{4194303};
std::string localAddress;
uint16_t udpPort{47808};
};
struct GatewayBacnetModelBinding {
std::string modelID;
BridgeObjectType objectType{BridgeObjectType::unknown};
int objectInstance{-1};
std::string property;
BridgeOperation operation{BridgeOperation::unknown};
BridgeDaliTarget target;
std::optional<int> bitIndex;
};
class GatewayBacnetBridgeAdapter {
public:
explicit GatewayBacnetBridgeAdapter(DaliBridgeEngine& engine);
void setConfig(const GatewayBacnetBridgeConfig& config);
const GatewayBacnetBridgeConfig& config() const;
DaliBridgeResult handlePropertyWrite(BridgeObjectType object_type,
int object_instance,
const std::string& property,
const DaliValue& value) const;
DaliBridgeResult readProperty(BridgeObjectType object_type,
int object_instance,
const std::string& property) const;
std::optional<GatewayBacnetModelBinding> findObject(BridgeObjectType object_type,
int object_instance,
const std::string& property) const;
std::vector<GatewayBacnetModelBinding> describeObjects() const;
private:
DaliBridgeResult executeBinding(const GatewayBacnetModelBinding& binding,
const std::string& sequence,
const DaliValue* value) const;
DaliBridgeEngine& engine_;
GatewayBacnetBridgeConfig config_;
};
} // namespace gateway
@@ -9,11 +9,15 @@ extern "C" {
typedef enum gateway_bacnet_object_kind {
GW_BACNET_OBJECT_UNKNOWN = 0,
GW_BACNET_OBJECT_ANALOG_INPUT,
GW_BACNET_OBJECT_ANALOG_VALUE,
GW_BACNET_OBJECT_ANALOG_OUTPUT,
GW_BACNET_OBJECT_BINARY_INPUT,
GW_BACNET_OBJECT_BINARY_VALUE,
GW_BACNET_OBJECT_BINARY_OUTPUT,
GW_BACNET_OBJECT_MULTI_STATE_INPUT,
GW_BACNET_OBJECT_MULTI_STATE_VALUE,
GW_BACNET_OBJECT_MULTI_STATE_OUTPUT,
} gateway_bacnet_object_kind_t;
typedef enum gateway_bacnet_write_value_kind {
@@ -48,7 +52,22 @@ bool gateway_bacnet_stack_upsert_object(
gateway_bacnet_object_kind_t object_kind,
uint32_t object_instance,
const char* object_name,
const char* description);
const char* description,
bool out_of_service,
uint32_t reliability);
bool gateway_bacnet_stack_set_object_state(
gateway_bacnet_object_kind_t object_kind,
uint32_t object_instance,
bool out_of_service,
uint32_t reliability);
bool gateway_bacnet_stack_set_present_value(
gateway_bacnet_object_kind_t object_kind,
uint32_t object_instance,
const gateway_bacnet_write_value_t* value);
bool gateway_bacnet_stack_clear_objects(void);
void gateway_bacnet_stack_send_i_am(void);
void gateway_bacnet_stack_poll(uint16_t elapsed_ms);
@@ -18,6 +18,8 @@ namespace {
constexpr const char* kTag = "gateway_bacnet";
constexpr TickType_t kPollDelayTicks = pdMS_TO_TICKS(10);
constexpr TickType_t kValueRefreshTicks = pdMS_TO_TICKS(2000);
constexpr uint32_t kReliabilityCommunicationFailure = 12;
class LockGuard {
public:
@@ -42,16 +44,32 @@ GatewayBacnetServer* g_server = nullptr;
gateway_bacnet_object_kind_t ToBacnetKind(BridgeObjectType type) {
switch (type) {
case BridgeObjectType::analogInput:
return GW_BACNET_OBJECT_ANALOG_INPUT;
case BridgeObjectType::analogValue:
return GW_BACNET_OBJECT_ANALOG_VALUE;
case BridgeObjectType::analogOutput:
return GW_BACNET_OBJECT_ANALOG_OUTPUT;
case BridgeObjectType::binaryInput:
return GW_BACNET_OBJECT_BINARY_INPUT;
case BridgeObjectType::binaryValue:
return GW_BACNET_OBJECT_BINARY_VALUE;
case BridgeObjectType::binaryOutput:
return GW_BACNET_OBJECT_BINARY_OUTPUT;
case BridgeObjectType::multiStateInput:
return GW_BACNET_OBJECT_MULTI_STATE_INPUT;
case BridgeObjectType::multiStateValue:
return GW_BACNET_OBJECT_MULTI_STATE_VALUE;
case BridgeObjectType::multiStateOutput:
return GW_BACNET_OBJECT_MULTI_STATE_OUTPUT;
case BridgeObjectType::holdingRegister:
return GW_BACNET_OBJECT_ANALOG_VALUE;
case BridgeObjectType::inputRegister:
return GW_BACNET_OBJECT_ANALOG_INPUT;
case BridgeObjectType::coil:
return GW_BACNET_OBJECT_BINARY_OUTPUT;
case BridgeObjectType::discreteInput:
return GW_BACNET_OBJECT_BINARY_INPUT;
default:
return GW_BACNET_OBJECT_UNKNOWN;
}
@@ -59,16 +77,24 @@ gateway_bacnet_object_kind_t ToBacnetKind(BridgeObjectType type) {
BridgeObjectType FromBacnetKind(gateway_bacnet_object_kind_t kind) {
switch (kind) {
case GW_BACNET_OBJECT_ANALOG_INPUT:
return BridgeObjectType::analogInput;
case GW_BACNET_OBJECT_ANALOG_VALUE:
return BridgeObjectType::analogValue;
case GW_BACNET_OBJECT_ANALOG_OUTPUT:
return BridgeObjectType::analogOutput;
case GW_BACNET_OBJECT_BINARY_INPUT:
return BridgeObjectType::binaryInput;
case GW_BACNET_OBJECT_BINARY_VALUE:
return BridgeObjectType::binaryValue;
case GW_BACNET_OBJECT_BINARY_OUTPUT:
return BridgeObjectType::binaryOutput;
case GW_BACNET_OBJECT_MULTI_STATE_INPUT:
return BridgeObjectType::multiStateInput;
case GW_BACNET_OBJECT_MULTI_STATE_VALUE:
return BridgeObjectType::multiStateValue;
case GW_BACNET_OBJECT_MULTI_STATE_OUTPUT:
return BridgeObjectType::multiStateOutput;
default:
return BridgeObjectType::unknown;
}
@@ -101,6 +127,59 @@ DaliValue StackWriteValueToDali(const gateway_bacnet_write_value_t& value) {
}
}
bool DaliValueToStackPresentValue(BridgeObjectType object_type, const DaliValue& value,
gateway_bacnet_write_value_t* out) {
if (out == nullptr) {
return false;
}
switch (ToBacnetKind(object_type)) {
case GW_BACNET_OBJECT_ANALOG_INPUT:
case GW_BACNET_OBJECT_ANALOG_VALUE:
case GW_BACNET_OBJECT_ANALOG_OUTPUT: {
const auto parsed = value.asDouble();
if (!parsed.has_value()) {
return false;
}
*out = gateway_bacnet_write_value_t{GW_BACNET_WRITE_VALUE_REAL,
parsed.value(),
false,
0};
return true;
}
case GW_BACNET_OBJECT_BINARY_INPUT:
case GW_BACNET_OBJECT_BINARY_VALUE:
case GW_BACNET_OBJECT_BINARY_OUTPUT: {
const auto parsed = value.asBool();
if (!parsed.has_value()) {
return false;
}
*out = gateway_bacnet_write_value_t{GW_BACNET_WRITE_VALUE_BOOLEAN,
0.0,
parsed.value(),
0};
return true;
}
case GW_BACNET_OBJECT_MULTI_STATE_INPUT:
case GW_BACNET_OBJECT_MULTI_STATE_VALUE:
case GW_BACNET_OBJECT_MULTI_STATE_OUTPUT: {
const auto parsed = value.asInt();
if (!parsed.has_value()) {
return false;
}
const uint32_t unsigned_value = parsed.value() <= 0
? 1
: static_cast<uint32_t>(parsed.value());
*out = gateway_bacnet_write_value_t{GW_BACNET_WRITE_VALUE_UNSIGNED,
0.0,
false,
unsigned_value};
return true;
}
default:
return false;
}
}
void HandleStackWrite(gateway_bacnet_object_kind_t object_kind, uint32_t object_instance,
const gateway_bacnet_write_value_t* value, void*) {
if (g_server == nullptr || value == nullptr) {
@@ -116,6 +195,7 @@ struct GatewayBacnetServer::ChannelRegistration {
GatewayBacnetServerConfig config;
std::vector<GatewayBacnetObjectBinding> bindings;
GatewayBacnetWriteCallback write_callback;
GatewayBacnetReadCallback read_callback;
};
struct GatewayBacnetServer::RuntimeBinding {
@@ -124,7 +204,11 @@ struct GatewayBacnetServer::RuntimeBinding {
uint32_t object_instance{0};
std::string model_id;
std::string property{"presentValue"};
bool out_of_service{false};
uint32_t reliability{0};
bool readable{false};
GatewayBacnetWriteCallback write_callback;
GatewayBacnetReadCallback read_callback;
};
GatewayBacnetServer& GatewayBacnetServer::instance() {
@@ -161,19 +245,17 @@ GatewayBacnetServerStatus GatewayBacnetServer::status() const {
esp_err_t GatewayBacnetServer::registerChannel(
uint8_t gateway_id, const GatewayBacnetServerConfig& config,
std::vector<GatewayBacnetObjectBinding> bindings,
GatewayBacnetWriteCallback write_callback) {
GatewayBacnetWriteCallback write_callback,
GatewayBacnetReadCallback read_callback) {
if (write_callback == nullptr) {
return ESP_ERR_INVALID_ARG;
}
bindings.erase(std::remove_if(bindings.begin(), bindings.end(), [](const auto& binding) {
return !IsSupportedObjectType(binding.object_type) ||
binding.object_instance > kMaxBacnetInstance;
binding.object_instance > kMaxBacnetInstance;
}),
bindings.end());
if (bindings.empty()) {
return ESP_ERR_NOT_FOUND;
}
LockGuard guard(lock_);
if (started_ && !configCompatible(config)) {
@@ -183,8 +265,11 @@ esp_err_t GatewayBacnetServer::registerChannel(
auto channel = std::find_if(channels_.begin(), channels_.end(), [gateway_id](const auto& item) {
return item.gateway_id == gateway_id;
});
if (bindings.empty() && !started_ && channel == channels_.end()) {
return ESP_ERR_NOT_FOUND;
}
ChannelRegistration registration{gateway_id, config, std::move(bindings),
std::move(write_callback)};
std::move(write_callback), std::move(read_callback)};
if (channel == channels_.end()) {
channels_.push_back(std::move(registration));
} else {
@@ -240,6 +325,10 @@ esp_err_t GatewayBacnetServer::rebuildObjectsLocked() {
runtime_bindings_.clear();
std::set<std::pair<BridgeObjectType, uint32_t>> used_objects;
if (!gateway_bacnet_stack_clear_objects()) {
return ESP_FAIL;
}
for (const auto& channel : channels_) {
for (const auto& binding : channel.bindings) {
const auto key = std::make_pair(binding.object_type, binding.object_instance);
@@ -254,7 +343,9 @@ esp_err_t GatewayBacnetServer::rebuildObjectsLocked() {
const std::string name = ObjectName(binding);
if (!gateway_bacnet_stack_upsert_object(ToBacnetKind(binding.object_type),
binding.object_instance, name.c_str(),
binding.model_id.c_str())) {
binding.model_id.c_str(),
binding.out_of_service,
binding.reliability)) {
return ESP_FAIL;
}
runtime_bindings_.push_back(RuntimeBinding{channel.gateway_id,
@@ -263,7 +354,11 @@ esp_err_t GatewayBacnetServer::rebuildObjectsLocked() {
binding.model_id,
binding.property.empty() ? "presentValue"
: binding.property,
channel.write_callback});
binding.out_of_service,
binding.reliability,
binding.readable,
channel.write_callback,
channel.read_callback});
}
}
@@ -304,12 +399,47 @@ bool GatewayBacnetServer::handleWrite(BridgeObjectType object_type, uint32_t obj
return ok;
}
void GatewayBacnetServer::refreshPresentValues() {
std::vector<RuntimeBinding> bindings;
{
LockGuard guard(lock_);
bindings = runtime_bindings_;
}
for (const auto& binding : bindings) {
const auto object_kind = ToBacnetKind(binding.object_type);
if (object_kind == GW_BACNET_OBJECT_UNKNOWN) {
continue;
}
if (!binding.readable || binding.read_callback == nullptr) {
LockGuard guard(lock_);
gateway_bacnet_stack_set_object_state(object_kind, binding.object_instance,
binding.out_of_service, binding.reliability);
continue;
}
gateway_bacnet_write_value_t stack_value = {};
const auto value = binding.read_callback(binding.object_type, binding.object_instance,
binding.property);
const bool converted = value.has_value() &&
DaliValueToStackPresentValue(binding.object_type, value.value(),
&stack_value);
LockGuard guard(lock_);
const bool ok = converted && gateway_bacnet_stack_set_present_value(
object_kind, binding.object_instance, &stack_value);
gateway_bacnet_stack_set_object_state(
object_kind, binding.object_instance, binding.out_of_service || !ok,
ok ? binding.reliability : kReliabilityCommunicationFailure);
}
}
void GatewayBacnetServer::TaskEntry(void* arg) {
static_cast<GatewayBacnetServer*>(arg)->taskLoop();
}
void GatewayBacnetServer::taskLoop() {
TickType_t last_timer = xTaskGetTickCount();
TickType_t last_refresh = last_timer;
while (true) {
const TickType_t now = xTaskGetTickCount();
@@ -319,9 +449,17 @@ void GatewayBacnetServer::taskLoop() {
elapsed_ms = static_cast<uint16_t>(elapsed * portTICK_PERIOD_MS);
last_timer = now;
}
bool refresh_due = false;
{
LockGuard guard(lock_);
gateway_bacnet_stack_poll(elapsed_ms);
if ((now - last_refresh) >= kValueRefreshTicks) {
refresh_due = true;
}
}
if (refresh_due) {
refreshPresentValues();
last_refresh = now;
}
vTaskDelay(kPollDelayTicks);
}
@@ -0,0 +1,101 @@
#include "gateway_bacnet_bridge.hpp"
#include <utility>
namespace gateway {
GatewayBacnetBridgeAdapter::GatewayBacnetBridgeAdapter(DaliBridgeEngine& engine)
: engine_(engine) {}
void GatewayBacnetBridgeAdapter::setConfig(const GatewayBacnetBridgeConfig& config) {
config_ = config;
}
const GatewayBacnetBridgeConfig& GatewayBacnetBridgeAdapter::config() const { return config_; }
DaliBridgeResult GatewayBacnetBridgeAdapter::handlePropertyWrite(
BridgeObjectType object_type, int object_instance, const std::string& property,
const DaliValue& value) const {
const auto binding = findObject(object_type, object_instance, property);
if (!binding.has_value()) {
DaliBridgeResult result;
result.sequence = "bacnet-" + std::to_string(object_instance);
result.error = "unmapped bacnet object";
return result;
}
const std::string sequence = "bacnet-" + std::to_string(object_instance);
return executeBinding(binding.value(), sequence, &value);
}
DaliBridgeResult GatewayBacnetBridgeAdapter::readProperty(BridgeObjectType object_type,
int object_instance,
const std::string& property) const {
const auto binding = findObject(object_type, object_instance, property);
if (!binding.has_value()) {
DaliBridgeResult result;
result.sequence = "bacnet-read-" + std::to_string(object_instance);
result.error = "unmapped bacnet object";
return result;
}
const std::string sequence = "bacnet-read-" + std::to_string(object_instance);
return executeBinding(binding.value(), sequence, nullptr);
}
std::optional<GatewayBacnetModelBinding> GatewayBacnetBridgeAdapter::findObject(
BridgeObjectType object_type, int object_instance, const std::string& property) const {
for (const auto& model : engine_.listModels()) {
if (model.protocol != BridgeProtocolKind::bacnet) {
continue;
}
if (model.external.objectType != object_type) {
continue;
}
if (model.external.objectInstance.value_or(-1) != object_instance) {
continue;
}
if (!model.external.property.empty() && model.external.property != property) {
continue;
}
const std::string binding_property = model.external.property.empty() ? property
: model.external.property;
return GatewayBacnetModelBinding{model.id,
object_type,
object_instance,
binding_property,
model.operation,
model.dali,
model.external.bitIndex};
}
return std::nullopt;
}
std::vector<GatewayBacnetModelBinding> GatewayBacnetBridgeAdapter::describeObjects() const {
std::vector<GatewayBacnetModelBinding> bindings;
for (const auto& model : engine_.listModels()) {
if (model.protocol != BridgeProtocolKind::bacnet || !model.external.objectInstance.has_value()) {
continue;
}
bindings.push_back(GatewayBacnetModelBinding{model.id,
model.external.objectType,
model.external.objectInstance.value(),
model.external.property,
model.operation,
model.dali,
model.external.bitIndex});
}
return bindings;
}
DaliBridgeResult GatewayBacnetBridgeAdapter::executeBinding(
const GatewayBacnetModelBinding& binding, const std::string& sequence,
const DaliValue* value) const {
DaliBridgeRequest request;
request.sequence = sequence;
request.modelID = binding.modelID;
if (value != nullptr) {
request.value = *value;
}
return engine_.execute(request);
}
} // namespace gateway
@@ -5,11 +5,15 @@
#include "bacnet/apdu.h"
#include "bacnet/basic/binding/address.h"
#include "bacnet/basic/object/ai.h"
#include "bacnet/basic/object/ao.h"
#include "bacnet/basic/object/av.h"
#include "bacnet/basic/object/bi.h"
#include "bacnet/basic/object/bo.h"
#include "bacnet/basic/object/bv.h"
#include "bacnet/basic/object/device.h"
#include "bacnet/basic/object/ms-input.h"
#include "bacnet/basic/object/mso.h"
#include "bacnet/basic/object/msv.h"
#include "bacnet/basic/service/h_apdu.h"
#include "bacnet/basic/services.h"
@@ -39,6 +43,159 @@ static const char Multistate_Value_States[] =
"State 15\0"
"State 16\0";
static bool clear_analog_value_objects(void)
{
unsigned count = Analog_Value_Count();
while (count > 0) {
count--;
Analog_Value_Delete(Analog_Value_Index_To_Instance(count));
}
return true;
}
static bool clear_analog_output_objects(void)
{
unsigned count = Analog_Output_Count();
while (count > 0) {
count--;
Analog_Output_Delete(Analog_Output_Index_To_Instance(count));
}
return true;
}
static bool clear_binary_value_objects(void)
{
unsigned count = Binary_Value_Count();
while (count > 0) {
count--;
Binary_Value_Delete(Binary_Value_Index_To_Instance(count));
}
return true;
}
static bool clear_binary_output_objects(void)
{
unsigned count = Binary_Output_Count();
while (count > 0) {
count--;
Binary_Output_Delete(Binary_Output_Index_To_Instance(count));
}
return true;
}
static bool clear_multistate_value_objects(void)
{
unsigned count = Multistate_Value_Count();
while (count > 0) {
count--;
Multistate_Value_Delete(Multistate_Value_Index_To_Instance(count));
}
return true;
}
static bool clear_analog_input_objects(void)
{
unsigned count = Analog_Input_Count();
while (count > 0) {
count--;
Analog_Input_Delete(Analog_Input_Index_To_Instance(count));
}
return true;
}
static bool clear_binary_input_objects(void)
{
unsigned count = Binary_Input_Count();
while (count > 0) {
count--;
Binary_Input_Delete(Binary_Input_Index_To_Instance(count));
}
return true;
}
static bool clear_multistate_input_objects(void)
{
unsigned count = Multistate_Input_Count();
while (count > 0) {
count--;
Multistate_Input_Delete(Multistate_Input_Index_To_Instance(count));
}
return true;
}
static bool clear_multistate_output_objects(void)
{
unsigned count = Multistate_Output_Count();
while (count > 0) {
count--;
Multistate_Output_Delete(Multistate_Output_Index_To_Instance(count));
}
return true;
}
static void set_analog_value_state(
uint32_t object_instance, bool out_of_service, BACNET_RELIABILITY reliability)
{
Analog_Value_Out_Of_Service_Set(object_instance, out_of_service);
Analog_Value_Reliability_Set(object_instance, reliability);
}
static void set_analog_output_state(
uint32_t object_instance, bool out_of_service, BACNET_RELIABILITY reliability)
{
Analog_Output_Out_Of_Service_Set(object_instance, out_of_service);
Analog_Output_Reliability_Set(object_instance, reliability);
}
static void set_binary_value_state(
uint32_t object_instance, bool out_of_service, BACNET_RELIABILITY reliability)
{
Binary_Value_Out_Of_Service_Set(object_instance, out_of_service);
Binary_Value_Reliability_Set(object_instance, reliability);
}
static void set_binary_output_state(
uint32_t object_instance, bool out_of_service, BACNET_RELIABILITY reliability)
{
Binary_Output_Out_Of_Service_Set(object_instance, out_of_service);
Binary_Output_Reliability_Set(object_instance, reliability);
}
static void set_multistate_value_state(
uint32_t object_instance, bool out_of_service, BACNET_RELIABILITY reliability)
{
Multistate_Value_Out_Of_Service_Set(object_instance, out_of_service);
Multistate_Value_Reliability_Set(object_instance, reliability);
}
static void set_analog_input_state(
uint32_t object_instance, bool out_of_service, BACNET_RELIABILITY reliability)
{
Analog_Input_Out_Of_Service_Set(object_instance, out_of_service);
Analog_Input_Reliability_Set(object_instance, reliability);
}
static void set_binary_input_state(
uint32_t object_instance, bool out_of_service, BACNET_RELIABILITY reliability)
{
Binary_Input_Out_Of_Service_Set(object_instance, out_of_service);
Binary_Input_Reliability_Set(object_instance, reliability);
}
static void set_multistate_input_state(
uint32_t object_instance, bool out_of_service, BACNET_RELIABILITY reliability)
{
Multistate_Input_Out_Of_Service_Set(object_instance, out_of_service);
Multistate_Input_Reliability_Set(object_instance, reliability);
}
static void set_multistate_output_state(
uint32_t object_instance, bool out_of_service, BACNET_RELIABILITY reliability)
{
Multistate_Output_Out_Of_Service_Set(object_instance, out_of_service);
Multistate_Output_Reliability_Set(object_instance, reliability);
}
static void notify_write_real(
gateway_bacnet_object_kind_t object_kind, uint32_t object_instance, double value)
{
@@ -113,6 +270,25 @@ static void multistate_value_write(uint32_t object_instance, uint32_t old_value,
notify_write_unsigned(GW_BACNET_OBJECT_MULTI_STATE_VALUE, object_instance, value);
}
static void binary_input_write(
uint32_t object_instance, BACNET_BINARY_PV old_value, BACNET_BINARY_PV value)
{
(void)old_value;
notify_write_boolean(GW_BACNET_OBJECT_BINARY_INPUT, object_instance, value == BINARY_ACTIVE);
}
static void multistate_input_write(uint32_t object_instance, uint32_t old_value, uint32_t value)
{
(void)old_value;
notify_write_unsigned(GW_BACNET_OBJECT_MULTI_STATE_INPUT, object_instance, value);
}
static void multistate_output_write(uint32_t object_instance, uint32_t old_value, uint32_t value)
{
(void)old_value;
notify_write_unsigned(GW_BACNET_OBJECT_MULTI_STATE_OUTPUT, object_instance, value);
}
static object_functions_t Object_Table[] = {
{ OBJECT_DEVICE, NULL, Device_Count, Device_Index_To_Instance,
Device_Valid_Object_Instance_Number, Device_Object_Name, Device_Read_Property_Local,
@@ -149,6 +325,32 @@ static object_functions_t Object_Table[] = {
Multistate_Value_Encode_Value_List, Multistate_Value_Change_Of_Value,
Multistate_Value_Change_Of_Value_Clear, NULL, NULL, NULL, Multistate_Value_Create,
Multistate_Value_Delete, NULL, Multistate_Value_Writable_Property_List },
{ OBJECT_ANALOG_INPUT, Analog_Input_Init, Analog_Input_Count,
Analog_Input_Index_To_Instance, Analog_Input_Valid_Instance, Analog_Input_Object_Name,
Analog_Input_Read_Property, Analog_Input_Write_Property, Analog_Input_Property_Lists,
NULL, NULL, Analog_Input_Encode_Value_List, Analog_Input_Change_Of_Value,
Analog_Input_Change_Of_Value_Clear, NULL, NULL, NULL, Analog_Input_Create,
Analog_Input_Delete, NULL, Analog_Input_Writable_Property_List },
{ OBJECT_BINARY_INPUT, Binary_Input_Init, Binary_Input_Count,
Binary_Input_Index_To_Instance, Binary_Input_Valid_Instance, Binary_Input_Object_Name,
Binary_Input_Read_Property, Binary_Input_Write_Property, Binary_Input_Property_Lists,
NULL, NULL, Binary_Input_Encode_Value_List, Binary_Input_Change_Of_Value,
Binary_Input_Change_Of_Value_Clear, NULL, NULL, NULL, Binary_Input_Create,
Binary_Input_Delete, NULL, Binary_Input_Writable_Property_List },
{ OBJECT_MULTI_STATE_INPUT, Multistate_Input_Init, Multistate_Input_Count,
Multistate_Input_Index_To_Instance, Multistate_Input_Valid_Instance,
Multistate_Input_Object_Name, Multistate_Input_Read_Property,
Multistate_Input_Write_Property, Multistate_Input_Property_Lists, NULL, NULL,
Multistate_Input_Encode_Value_List, Multistate_Input_Change_Of_Value,
Multistate_Input_Change_Of_Value_Clear, NULL, NULL, NULL, Multistate_Input_Create,
Multistate_Input_Delete, NULL, Multistate_Input_Writable_Property_List },
{ OBJECT_MULTI_STATE_OUTPUT, Multistate_Output_Init, Multistate_Output_Count,
Multistate_Output_Index_To_Instance, Multistate_Output_Valid_Instance,
Multistate_Output_Object_Name, Multistate_Output_Read_Property,
Multistate_Output_Write_Property, Multistate_Output_Property_Lists, NULL, NULL,
Multistate_Output_Encode_Value_List, Multistate_Output_Change_Of_Value,
Multistate_Output_Change_Of_Value_Clear, NULL, NULL, NULL, Multistate_Output_Create,
Multistate_Output_Delete, NULL, Multistate_Output_Writable_Property_List },
{ MAX_BACNET_OBJECT_TYPE, NULL, NULL, NULL, NULL, NULL, NULL, NULL, NULL, NULL, NULL,
NULL, NULL, NULL, NULL, NULL, NULL, NULL, NULL, NULL, NULL },
};
@@ -184,6 +386,9 @@ bool gateway_bacnet_stack_start(
Binary_Value_Write_Present_Value_Callback_Set(binary_value_write);
Binary_Output_Write_Present_Value_Callback_Set(binary_output_write);
Multistate_Value_Write_Present_Value_Callback_Set(multistate_value_write);
Binary_Input_Write_Present_Value_Callback_Set(binary_input_write);
Multistate_Input_Write_Present_Value_Callback_Set(multistate_input_write);
Multistate_Output_Write_Present_Value_Callback_Set(multistate_output_write);
apdu_set_unrecognized_service_handler_handler(handler_unrecognized_service);
apdu_set_unconfirmed_handler(SERVICE_UNCONFIRMED_WHO_IS, handler_who_is);
@@ -209,7 +414,9 @@ bool gateway_bacnet_stack_upsert_object(
gateway_bacnet_object_kind_t object_kind,
uint32_t object_instance,
const char* object_name,
const char* description)
const char* description,
bool out_of_service,
uint32_t reliability)
{
if (!object_name || object_name[0] == '\0') {
object_name = "DALI BACnet Object";
@@ -218,6 +425,8 @@ bool gateway_bacnet_stack_upsert_object(
description = "";
}
BACNET_RELIABILITY object_reliability = (BACNET_RELIABILITY)reliability;
switch (object_kind) {
case GW_BACNET_OBJECT_ANALOG_VALUE:
if (!Analog_Value_Valid_Instance(object_instance)) {
@@ -227,6 +436,7 @@ bool gateway_bacnet_stack_upsert_object(
Analog_Value_Description_Set(object_instance, description);
Analog_Value_Units_Set(object_instance, UNITS_PERCENT);
Analog_Value_Present_Value_Set(object_instance, 0.0f, BACNET_NO_PRIORITY);
set_analog_value_state(object_instance, out_of_service, object_reliability);
return true;
case GW_BACNET_OBJECT_ANALOG_OUTPUT:
if (!Analog_Output_Valid_Instance(object_instance)) {
@@ -236,6 +446,7 @@ bool gateway_bacnet_stack_upsert_object(
Analog_Output_Description_Set(object_instance, description);
Analog_Output_Units_Set(object_instance, UNITS_PERCENT);
Analog_Output_Present_Value_Set(object_instance, 0.0f, BACNET_MAX_PRIORITY);
set_analog_output_state(object_instance, out_of_service, object_reliability);
return true;
case GW_BACNET_OBJECT_BINARY_VALUE:
if (!Binary_Value_Valid_Instance(object_instance)) {
@@ -245,6 +456,7 @@ bool gateway_bacnet_stack_upsert_object(
Binary_Value_Description_Set(object_instance, description);
Binary_Value_Write_Enable(object_instance);
Binary_Value_Present_Value_Set(object_instance, BINARY_INACTIVE);
set_binary_value_state(object_instance, out_of_service, object_reliability);
return true;
case GW_BACNET_OBJECT_BINARY_OUTPUT:
if (!Binary_Output_Valid_Instance(object_instance)) {
@@ -253,6 +465,7 @@ bool gateway_bacnet_stack_upsert_object(
Binary_Output_Name_Set(object_instance, object_name);
Binary_Output_Description_Set(object_instance, description);
Binary_Output_Present_Value_Set(object_instance, BINARY_INACTIVE, BACNET_MAX_PRIORITY);
set_binary_output_state(object_instance, out_of_service, object_reliability);
return true;
case GW_BACNET_OBJECT_MULTI_STATE_VALUE:
if (!Multistate_Value_Valid_Instance(object_instance)) {
@@ -263,12 +476,150 @@ bool gateway_bacnet_stack_upsert_object(
Multistate_Value_State_Text_List_Set(object_instance, Multistate_Value_States);
Multistate_Value_Write_Enable(object_instance);
Multistate_Value_Present_Value_Set(object_instance, 1);
set_multistate_value_state(object_instance, out_of_service, object_reliability);
return true;
case GW_BACNET_OBJECT_ANALOG_INPUT:
if (!Analog_Input_Valid_Instance(object_instance)) {
Analog_Input_Create(object_instance);
}
Analog_Input_Name_Set(object_instance, object_name);
Analog_Input_Description_Set(object_instance, description);
Analog_Input_Units_Set(object_instance, UNITS_PERCENT);
Analog_Input_Present_Value_Set(object_instance, 0.0f);
set_analog_input_state(object_instance, out_of_service, object_reliability);
return true;
case GW_BACNET_OBJECT_BINARY_INPUT:
if (!Binary_Input_Valid_Instance(object_instance)) {
Binary_Input_Create(object_instance);
}
Binary_Input_Name_Set(object_instance, object_name);
Binary_Input_Description_Set(object_instance, description);
Binary_Input_Present_Value_Set(object_instance, BINARY_INACTIVE);
set_binary_input_state(object_instance, out_of_service, object_reliability);
return true;
case GW_BACNET_OBJECT_MULTI_STATE_INPUT:
if (!Multistate_Input_Valid_Instance(object_instance)) {
Multistate_Input_Create(object_instance);
}
Multistate_Input_Name_Set(object_instance, object_name);
Multistate_Input_Description_Set(object_instance, description);
Multistate_Input_State_Text_List_Set(object_instance, Multistate_Value_States);
Multistate_Input_Present_Value_Set(object_instance, 1);
set_multistate_input_state(object_instance, out_of_service, object_reliability);
return true;
case GW_BACNET_OBJECT_MULTI_STATE_OUTPUT:
if (!Multistate_Output_Valid_Instance(object_instance)) {
Multistate_Output_Create(object_instance);
}
Multistate_Output_Name_Set(object_instance, object_name);
Multistate_Output_Description_Set(object_instance, description);
Multistate_Output_State_Text_List_Set(object_instance, Multistate_Value_States);
Multistate_Output_Present_Value_Set(object_instance, 1, BACNET_MAX_PRIORITY);
set_multistate_output_state(object_instance, out_of_service, object_reliability);
return true;
default:
return false;
}
}
bool gateway_bacnet_stack_set_object_state(
gateway_bacnet_object_kind_t object_kind,
uint32_t object_instance,
bool out_of_service,
uint32_t reliability)
{
BACNET_RELIABILITY object_reliability = (BACNET_RELIABILITY)reliability;
switch (object_kind) {
case GW_BACNET_OBJECT_ANALOG_VALUE:
set_analog_value_state(object_instance, out_of_service, object_reliability);
return true;
case GW_BACNET_OBJECT_ANALOG_OUTPUT:
set_analog_output_state(object_instance, out_of_service, object_reliability);
return true;
case GW_BACNET_OBJECT_BINARY_VALUE:
set_binary_value_state(object_instance, out_of_service, object_reliability);
return true;
case GW_BACNET_OBJECT_BINARY_OUTPUT:
set_binary_output_state(object_instance, out_of_service, object_reliability);
return true;
case GW_BACNET_OBJECT_MULTI_STATE_VALUE:
set_multistate_value_state(object_instance, out_of_service, object_reliability);
return true;
case GW_BACNET_OBJECT_ANALOG_INPUT:
set_analog_input_state(object_instance, out_of_service, object_reliability);
return true;
case GW_BACNET_OBJECT_BINARY_INPUT:
set_binary_input_state(object_instance, out_of_service, object_reliability);
return true;
case GW_BACNET_OBJECT_MULTI_STATE_INPUT:
set_multistate_input_state(object_instance, out_of_service, object_reliability);
return true;
case GW_BACNET_OBJECT_MULTI_STATE_OUTPUT:
set_multistate_output_state(object_instance, out_of_service, object_reliability);
return true;
default:
return false;
}
}
bool gateway_bacnet_stack_set_present_value(
gateway_bacnet_object_kind_t object_kind,
uint32_t object_instance,
const gateway_bacnet_write_value_t* value)
{
if (!value) {
return false;
}
switch (object_kind) {
case GW_BACNET_OBJECT_ANALOG_VALUE:
return Analog_Value_Present_Value_Set(
object_instance, (float)value->real_value, BACNET_NO_PRIORITY);
case GW_BACNET_OBJECT_ANALOG_OUTPUT:
return Analog_Output_Present_Value_Set(
object_instance, (float)value->real_value, BACNET_MAX_PRIORITY);
case GW_BACNET_OBJECT_ANALOG_INPUT:
Analog_Input_Present_Value_Set(object_instance, (float)value->real_value);
return true;
case GW_BACNET_OBJECT_BINARY_VALUE:
return Binary_Value_Present_Value_Set(
object_instance, value->boolean_value ? BINARY_ACTIVE : BINARY_INACTIVE);
case GW_BACNET_OBJECT_BINARY_OUTPUT:
return Binary_Output_Present_Value_Set(
object_instance, value->boolean_value ? BINARY_ACTIVE : BINARY_INACTIVE,
BACNET_MAX_PRIORITY);
case GW_BACNET_OBJECT_BINARY_INPUT:
return Binary_Input_Present_Value_Set(
object_instance, value->boolean_value ? BINARY_ACTIVE : BINARY_INACTIVE);
case GW_BACNET_OBJECT_MULTI_STATE_VALUE:
return Multistate_Value_Present_Value_Set(
object_instance, value->unsigned_value == 0 ? 1 : value->unsigned_value);
case GW_BACNET_OBJECT_MULTI_STATE_OUTPUT:
return Multistate_Output_Present_Value_Set(
object_instance, value->unsigned_value == 0 ? 1 : value->unsigned_value,
BACNET_MAX_PRIORITY);
case GW_BACNET_OBJECT_MULTI_STATE_INPUT:
return Multistate_Input_Present_Value_Set(
object_instance, value->unsigned_value == 0 ? 1 : value->unsigned_value);
default:
return false;
}
}
bool gateway_bacnet_stack_clear_objects(void)
{
return clear_analog_value_objects() &&
clear_analog_output_objects() &&
clear_analog_input_objects() &&
clear_binary_value_objects() &&
clear_binary_output_objects() &&
clear_binary_input_objects() &&
clear_multistate_value_objects() &&
clear_multistate_input_objects() &&
clear_multistate_output_objects();
}
void gateway_bacnet_stack_send_i_am(void)
{
Send_I_Am(&Handler_Transmit_Buffer[0]);
+5
View File
@@ -2,10 +2,15 @@ set(GATEWAY_BRIDGE_REQUIRES
dali_domain
dali_cpp
espressif__cjson
esp_driver_uart
freertos
gateway_cache
gateway_knx
gateway_modbus
log
lwip
nvs_flash
openknx_idf
)
idf_component_register(
@@ -2,16 +2,21 @@
#include <cstdint>
#include <memory>
#include <optional>
#include <set>
#include <string>
#include <vector>
#include "esp_err.h"
#include "freertos/FreeRTOS.h"
#include "freertos/task.h"
#include "gateway_knx.hpp"
#include "gateway_modbus.hpp"
namespace gateway {
class DaliDomainService;
class GatewayCache;
struct GatewayBridgeServiceConfig {
bool bridge_enabled{true};
@@ -19,12 +24,21 @@ struct GatewayBridgeServiceConfig {
bool modbus_startup_enabled{false};
bool bacnet_enabled{false};
bool bacnet_startup_enabled{false};
bool knx_enabled{false};
bool knx_startup_enabled{false};
bool cloud_enabled{true};
bool cloud_startup_enabled{false};
uint32_t modbus_task_stack_size{6144};
UBaseType_t modbus_task_priority{4};
std::optional<GatewayModbusConfig> default_modbus_config;
bool allow_modbus_uart0{false};
bool allow_knx_uart0{false};
std::vector<int> reserved_uart_ports;
uint32_t bacnet_task_stack_size{8192};
UBaseType_t bacnet_task_priority{5};
uint32_t knx_task_stack_size{8192};
UBaseType_t knx_task_priority{5};
std::optional<GatewayKnxConfig> default_knx_config;
};
struct GatewayBridgeHttpResponse {
@@ -35,13 +49,14 @@ struct GatewayBridgeHttpResponse {
class GatewayBridgeService {
public:
GatewayBridgeService(DaliDomainService& dali_domain,
GatewayCache& cache,
GatewayBridgeServiceConfig config = {});
~GatewayBridgeService();
esp_err_t start();
GatewayBridgeHttpResponse handleGet(const std::string& action, int gateway_id = -1,
const std::string& query = {}) const;
const std::string& query = {});
GatewayBridgeHttpResponse handlePost(const std::string& action, int gateway_id,
const std::string& body);
@@ -50,8 +65,13 @@ class GatewayBridgeService {
ChannelRuntime* findRuntime(uint8_t gateway_id);
const ChannelRuntime* findRuntime(uint8_t gateway_id) const;
void collectUsedRuntimeResources(uint8_t except_gateway_id,
std::set<uint16_t>* modbus_tcp_ports,
std::set<uint16_t>* knx_udp_ports,
std::set<int>* serial_uarts) const;
DaliDomainService& dali_domain_;
GatewayCache& cache_;
GatewayBridgeServiceConfig config_;
std::vector<std::unique_ptr<ChannelRuntime>> runtimes_;
};
File diff suppressed because it is too large Load Diff
+7
View File
@@ -0,0 +1,7 @@
idf_component_register(
SRCS "src/gateway_knx.cpp"
INCLUDE_DIRS "include"
REQUIRES dali_cpp esp_driver_uart freertos log lwip openknx_idf
)
set_property(TARGET ${COMPONENT_LIB} PROPERTY CXX_STANDARD 17)
@@ -0,0 +1,259 @@
#pragma once
#include "bridge.hpp"
#include "model_value.hpp"
#include "esp_err.h"
#include "freertos/FreeRTOS.h"
#include "freertos/task.h"
#include "lwip/sockets.h"
#include <atomic>
#include <cstddef>
#include <cstdint>
#include <functional>
#include <map>
#include <memory>
#include <optional>
#include <string>
#include <vector>
namespace gateway {
namespace openknx {
class EtsDeviceRuntime;
}
constexpr uint16_t kGatewayKnxDefaultUdpPort = 3671;
constexpr const char* kGatewayKnxDefaultMulticastAddress = "224.0.23.12";
constexpr uint32_t kGatewayKnxDefaultTpBaudrate = 19200;
struct GatewayKnxTpUartConfig {
int uart_port{1};
int tx_pin{-1};
int rx_pin{-1};
uint32_t baudrate{kGatewayKnxDefaultTpBaudrate};
size_t rx_buffer_size{1024};
size_t tx_buffer_size{1024};
uint32_t read_timeout_ms{20};
};
enum class GatewayKnxMappingMode : uint8_t {
kFormula = 0,
kGwReg1Direct = 1,
kManual = 2,
kEtsDatabase = 3,
};
struct GatewayKnxEtsAssociation {
uint16_t group_address{0};
uint16_t group_object_number{0};
};
struct GatewayKnxConfig {
bool dali_router_enabled{true};
bool ip_router_enabled{false};
bool tunnel_enabled{true};
bool multicast_enabled{true};
bool ets_database_enabled{true};
GatewayKnxMappingMode mapping_mode{GatewayKnxMappingMode::kFormula};
uint8_t main_group{0};
uint16_t udp_port{kGatewayKnxDefaultUdpPort};
std::string multicast_address{kGatewayKnxDefaultMulticastAddress};
uint16_t individual_address{0x1101};
std::vector<GatewayKnxEtsAssociation> ets_associations;
GatewayKnxTpUartConfig tp_uart;
};
enum class GatewayKnxDaliDataType : uint8_t {
kUnknown = 0,
kSwitch = 1,
kBrightness = 2,
kColorTemperature = 3,
kRgb = 4,
};
enum class GatewayKnxDaliTargetKind : uint8_t {
kNone = 0,
kBroadcast = 1,
kShortAddress = 2,
kGroup = 3,
};
struct GatewayKnxDaliTarget {
GatewayKnxDaliTargetKind kind{GatewayKnxDaliTargetKind::kNone};
int address{-1};
};
struct GatewayKnxDaliBinding {
uint16_t group_address{0};
uint8_t main_group{0};
uint8_t middle_group{0};
uint8_t sub_group{0};
GatewayKnxMappingMode mapping_mode{GatewayKnxMappingMode::kFormula};
int group_object_number{-1};
int channel_index{-1};
std::string address;
std::string name;
std::string object_role;
std::string datapoint_type;
GatewayKnxDaliDataType data_type{GatewayKnxDaliDataType::kUnknown};
GatewayKnxDaliTarget target;
};
struct GatewayKnxCommissioningBallast {
uint8_t high{0};
uint8_t middle{0};
uint8_t low{0};
uint8_t short_address{0xff};
};
std::optional<GatewayKnxConfig> GatewayKnxConfigFromValue(const DaliValue* value);
DaliValue GatewayKnxConfigToValue(const GatewayKnxConfig& config);
const char* GatewayKnxMappingModeToString(GatewayKnxMappingMode mode);
GatewayKnxMappingMode GatewayKnxMappingModeFromString(const std::string& value);
const char* GatewayKnxDataTypeToString(GatewayKnxDaliDataType data_type);
const char* GatewayKnxTargetKindToString(GatewayKnxDaliTargetKind kind);
std::optional<GatewayKnxDaliDataType> GatewayKnxDaliDataTypeForMiddleGroup(
uint8_t middle_group);
std::optional<GatewayKnxDaliTarget> GatewayKnxDaliTargetForSubgroup(uint8_t sub_group);
uint16_t GatewayKnxGroupAddress(uint8_t main_group, uint8_t middle_group,
uint8_t sub_group);
std::string GatewayKnxGroupAddressString(uint16_t group_address);
class GatewayKnxBridge {
public:
explicit GatewayKnxBridge(DaliBridgeEngine& engine);
void setConfig(const GatewayKnxConfig& config);
const GatewayKnxConfig& config() const;
size_t etsBindingCount() const;
std::vector<GatewayKnxDaliBinding> describeDaliBindings() const;
DaliBridgeResult handleCemiFrame(const uint8_t* data, size_t len);
DaliBridgeResult handleGroupWrite(uint16_t group_address, const uint8_t* data,
size_t len);
bool handleFunctionPropertyCommand(uint8_t object_index, uint8_t property_id,
const uint8_t* data, size_t len,
std::vector<uint8_t>* response);
bool handleFunctionPropertyState(uint8_t object_index, uint8_t property_id,
const uint8_t* data, size_t len,
std::vector<uint8_t>* response);
private:
DaliBridgeResult executeForDecodedWrite(uint16_t group_address,
GatewayKnxDaliDataType data_type,
GatewayKnxDaliTarget target,
const uint8_t* data, size_t len);
DaliBridgeResult executeEtsBindings(uint16_t group_address,
const std::vector<GatewayKnxDaliBinding>& bindings,
const uint8_t* data, size_t len);
void rebuildEtsBindings();
bool handleReg1TypeCommand(const uint8_t* data, size_t len,
std::vector<uint8_t>* response);
bool handleReg1ScanCommand(const uint8_t* data, size_t len,
std::vector<uint8_t>* response);
bool handleReg1AssignCommand(const uint8_t* data, size_t len,
std::vector<uint8_t>* response);
bool handleReg1EvgWriteCommand(const uint8_t* data, size_t len,
std::vector<uint8_t>* response);
bool handleReg1EvgReadCommand(const uint8_t* data, size_t len,
std::vector<uint8_t>* response);
bool handleReg1SetSceneCommand(const uint8_t* data, size_t len,
std::vector<uint8_t>* response);
bool handleReg1GetSceneCommand(const uint8_t* data, size_t len,
std::vector<uint8_t>* response);
bool handleReg1IdentifyCommand(const uint8_t* data, size_t len,
std::vector<uint8_t>* response);
bool handleReg1ScanState(const uint8_t* data, size_t len,
std::vector<uint8_t>* response);
bool handleReg1AssignState(const uint8_t* data, size_t len,
std::vector<uint8_t>* response);
bool handleReg1FoundEvgsState(const uint8_t* data, size_t len,
std::vector<uint8_t>* response);
DaliBridgeEngine& engine_;
GatewayKnxConfig config_;
std::map<uint16_t, std::vector<GatewayKnxDaliBinding>> ets_bindings_by_group_address_;
bool commissioning_scan_done_{true};
bool commissioning_assign_done_{true};
std::vector<GatewayKnxCommissioningBallast> commissioning_found_ballasts_;
};
class GatewayKnxTpIpRouter {
public:
using CemiFrameHandler = std::function<DaliBridgeResult(const uint8_t* data, size_t len)>;
GatewayKnxTpIpRouter(GatewayKnxBridge& bridge, CemiFrameHandler handler,
std::string openknx_namespace = "openknx");
~GatewayKnxTpIpRouter();
void setConfig(const GatewayKnxConfig& config);
const GatewayKnxConfig& config() const;
esp_err_t start(uint32_t task_stack_size, UBaseType_t task_priority);
esp_err_t stop();
bool started() const;
const std::string& lastError() const;
private:
static void TaskEntry(void* arg);
void taskLoop();
void finishTask();
void closeSockets();
bool configureSocket();
bool configureTpUart();
bool initializeTpUart();
void handleUdpDatagram(const uint8_t* data, size_t len, const ::sockaddr_in& remote);
void handleRoutingIndication(const uint8_t* body, size_t len);
void handleTunnellingRequest(const uint8_t* body, size_t len, const ::sockaddr_in& remote);
void handleConnectRequest(const uint8_t* body, size_t len, const ::sockaddr_in& remote);
void handleConnectionStateRequest(const uint8_t* body, size_t len,
const ::sockaddr_in& remote);
void handleDisconnectRequest(const uint8_t* body, size_t len, const ::sockaddr_in& remote);
void sendTunnellingAck(uint8_t channel_id, uint8_t sequence, uint8_t status,
const ::sockaddr_in& remote);
void sendTunnelIndication(const uint8_t* data, size_t len);
void sendConnectionStateResponse(uint8_t channel_id, uint8_t status,
const ::sockaddr_in& remote);
void sendDisconnectResponse(uint8_t channel_id, uint8_t status,
const ::sockaddr_in& remote);
void sendConnectResponse(uint8_t channel_id, uint8_t status,
const ::sockaddr_in& remote);
void sendRoutingIndication(const uint8_t* data, size_t len);
bool handleOpenKnxTunnelFrame(const uint8_t* data, size_t len);
void syncOpenKnxConfigFromDevice();
uint16_t effectiveIndividualAddress() const;
uint16_t effectiveTunnelAddress() const;
void pollTpUart();
void handleTpUartControlByte(uint8_t byte);
void handleTpTelegram(const uint8_t* data, size_t len);
void forwardCemiToTp(const uint8_t* data, size_t len);
GatewayKnxBridge& bridge_;
CemiFrameHandler handler_;
std::string openknx_namespace_;
GatewayKnxConfig config_;
std::unique_ptr<openknx::EtsDeviceRuntime> ets_device_;
TaskHandle_t task_handle_{nullptr};
std::atomic_bool stop_requested_{false};
std::atomic_bool started_{false};
int udp_sock_{-1};
int tp_uart_port_{-1};
uint8_t tunnel_channel_id_{1};
uint8_t expected_tunnel_sequence_{0};
uint8_t tunnel_send_sequence_{0};
bool tunnel_connected_{false};
::sockaddr_in tunnel_remote_{};
std::vector<uint8_t> tp_rx_frame_;
std::vector<uint8_t> tp_last_sent_telegram_;
TickType_t tp_uart_last_byte_tick_{0};
bool tp_uart_extended_frame_{false};
bool tp_uart_online_{false};
std::string last_error_;
};
} // namespace gateway
File diff suppressed because it is too large Load Diff
+7
View File
@@ -0,0 +1,7 @@
idf_component_register(
SRCS "src/gateway_modbus.cpp"
INCLUDE_DIRS "include"
REQUIRES dali_cpp
)
set_property(TARGET ${COMPONENT_LIB} PROPERTY CXX_STANDARD 17)
@@ -0,0 +1,190 @@
#pragma once
#include "bridge.hpp"
#include "bridge_model.hpp"
#include "model_value.hpp"
#include <cstddef>
#include <cstdint>
#include <optional>
#include <string>
#include <vector>
namespace gateway {
constexpr uint16_t kGatewayModbusDefaultTcpPort = 1502;
constexpr size_t kGatewayModbusMaxPduBytes = 252;
constexpr uint16_t kGatewayModbusMaxReadBits = 2000;
constexpr uint16_t kGatewayModbusMaxReadRegisters = 125;
constexpr uint16_t kGatewayModbusMaxWriteBits = 1968;
constexpr uint16_t kGatewayModbusMaxWriteRegisters = 123;
constexpr uint32_t kGatewayModbusDefaultSerialBaudrate = 9600;
constexpr uint32_t kGatewayModbusDefaultSerialResponseTimeoutMs = 20;
constexpr uint32_t kGatewayModbusDefaultSerialInterFrameGapUs = 4000;
struct GatewayModbusRs485Config {
bool enabled{false};
int de_pin{-1};
};
struct GatewayModbusSerialConfig {
int uart_port{1};
int tx_pin{-1};
int rx_pin{-1};
uint32_t baudrate{kGatewayModbusDefaultSerialBaudrate};
int data_bits{8};
std::string parity{"none"};
int stop_bits{1};
size_t rx_buffer_size{512};
size_t tx_buffer_size{512};
uint32_t response_timeout_ms{kGatewayModbusDefaultSerialResponseTimeoutMs};
uint32_t inter_frame_gap_us{kGatewayModbusDefaultSerialInterFrameGapUs};
GatewayModbusRs485Config rs485;
};
struct GatewayModbusConfig {
std::string transport{"tcp-server"};
std::string host;
uint16_t port{kGatewayModbusDefaultTcpPort};
uint8_t unit_id{1};
GatewayModbusSerialConfig serial;
};
bool GatewayModbusTransportIsTcp(const std::string& transport);
bool GatewayModbusTransportIsRtu(const std::string& transport);
bool GatewayModbusTransportIsAscii(const std::string& transport);
bool GatewayModbusTransportIsSerial(const std::string& transport);
enum class GatewayModbusSpace : uint8_t {
kCoil = 1,
kDiscreteInput = 2,
kHoldingRegister = 3,
kInputRegister = 4,
};
enum class GatewayModbusAccess : uint8_t {
kReadOnly = 0,
kWriteOnly = 1,
kReadWrite = 2,
};
enum class GatewayModbusGeneratedKind : uint8_t {
kNone = 0,
kShortOn,
kShortOff,
kShortRecallMax,
kShortRecallMin,
kShortDiscovered,
kShortOnline,
kShortSupportsDt1,
kShortSupportsDt4,
kShortSupportsDt5,
kShortSupportsDt6,
kShortSupportsDt8,
kShortGroupMaskKnown,
kShortActualLevelKnown,
kShortSceneKnown,
kShortSettingsKnown,
kShortControlGearPresent,
kShortLampFailure,
kShortLampPowerOn,
kShortLimitError,
kShortFadingCompleted,
kShortResetState,
kShortMissingShortAddress,
kShortPowerSupplyFault,
kShortBrightness,
kShortColorTemperature,
kShortGroupMask,
kShortPowerOnLevel,
kShortSystemFailureLevel,
kShortMinLevel,
kShortMaxLevel,
kShortFadeTime,
kShortFadeRate,
kShortInventoryState,
kShortPrimaryType,
kShortTypeMask,
kShortActualLevel,
kShortSceneId,
kShortRawStatus,
kShortDiagnosticBit,
};
struct GatewayModbusPoint {
GatewayModbusSpace space{GatewayModbusSpace::kHoldingRegister};
GatewayModbusAccess access{GatewayModbusAccess::kReadWrite};
uint16_t address{0};
std::string id;
std::string name;
bool generated{false};
GatewayModbusGeneratedKind generated_kind{GatewayModbusGeneratedKind::kNone};
const char* generated_suffix{"point"};
const char* generated_name{"point"};
int short_address{-1};
std::string model_id;
BridgeOperation operation{BridgeOperation::unknown};
std::optional<int> bit_index;
const char* diagnostic_snapshot{""};
const char* diagnostic_bool{""};
int diagnostic_device_type{-1};
};
struct GatewayModbusPointBinding {
std::string model_id;
GatewayModbusSpace space{GatewayModbusSpace::kHoldingRegister};
uint16_t address{0};
std::string id;
std::string name;
bool generated{false};
GatewayModbusGeneratedKind generated_kind{GatewayModbusGeneratedKind::kNone};
int short_address{-1};
GatewayModbusAccess access{GatewayModbusAccess::kReadWrite};
std::optional<int> bit_index;
std::string diagnostic_snapshot;
std::string diagnostic_bool;
int diagnostic_device_type{-1};
};
std::optional<GatewayModbusConfig> GatewayModbusConfigFromValue(const DaliValue* value);
DaliValue GatewayModbusConfigToValue(const GatewayModbusConfig& config);
const char* GatewayModbusSpaceToString(GatewayModbusSpace space);
const char* GatewayModbusAccessToString(GatewayModbusAccess access);
const char* GatewayModbusGeneratedKindToString(GatewayModbusGeneratedKind kind);
int GatewayModbusHumanAddressFromWire(GatewayModbusSpace space, uint16_t zero_based_address);
std::optional<GatewayModbusSpace> GatewayModbusReadSpaceForFunction(uint8_t function_code);
std::optional<GatewayModbusSpace> GatewayModbusWriteSpaceForFunction(uint8_t function_code);
class GatewayModbusBridge {
public:
explicit GatewayModbusBridge(DaliBridgeEngine& engine);
void setConfig(const GatewayModbusConfig& config);
const GatewayModbusConfig& config() const;
void rebuildMap();
std::optional<GatewayModbusPoint> findPoint(GatewayModbusSpace space,
uint16_t address) const;
GatewayModbusPointBinding describePoint(const GatewayModbusPoint& point) const;
void appendGeneratedPointsForShortAddress(uint8_t short_address,
std::vector<GatewayModbusPoint>* points) const;
std::vector<GatewayModbusPointBinding> describePoints() const;
std::vector<GatewayModbusPointBinding> describeHoldingRegisters() const;
const std::vector<GatewayModbusPoint>& points() const;
DaliBridgeResult readModelPoint(const GatewayModbusPoint& point) const;
DaliBridgeResult writeRegisterPoint(const GatewayModbusPoint& point, uint16_t value) const;
DaliBridgeResult writeCoilPoint(const GatewayModbusPoint& point, bool value) const;
private:
DaliBridgeResult executeModelPoint(const GatewayModbusPoint& point,
std::optional<int> value) const;
DaliBridgeEngine& engine_;
GatewayModbusConfig config_;
std::vector<GatewayModbusPoint> points_;
};
} // namespace gateway
@@ -0,0 +1,941 @@
#include "gateway_modbus.hpp"
#include <algorithm>
#include <array>
#include <cstdio>
#include <utility>
namespace gateway {
namespace {
constexpr uint16_t kCoilBase = 1;
constexpr uint16_t kDiscreteInputBase = 10001;
constexpr uint16_t kInputRegisterBase = 30001;
constexpr uint16_t kHoldingRegisterBase = 40001;
constexpr uint16_t kShortAddressCount = 64;
constexpr uint16_t kShortStride = 32;
constexpr uint16_t kDiagnosticDiscreteInputBase = kDiscreteInputBase +
kShortAddressCount * kShortStride;
constexpr uint16_t kDiagnosticStride = 128;
struct PointKey {
GatewayModbusSpace space{GatewayModbusSpace::kHoldingRegister};
uint16_t address{0};
bool operator<(const PointKey& other) const {
if (space != other.space) {
return static_cast<uint8_t>(space) < static_cast<uint8_t>(other.space);
}
return address < other.address;
}
};
struct GeneratedPointSpec {
uint16_t offset;
GatewayModbusSpace space;
GatewayModbusAccess access;
GatewayModbusGeneratedKind kind;
const char* suffix;
const char* name;
};
struct GeneratedDiagnosticBitSpec {
uint16_t offset;
int device_type;
const char* snapshot;
const char* bool_key;
const char* suffix;
const char* name;
};
constexpr std::array<GeneratedPointSpec, 4> kGeneratedCoils{{
{0, GatewayModbusSpace::kCoil, GatewayModbusAccess::kWriteOnly,
GatewayModbusGeneratedKind::kShortOn, "on", "recall max"},
{1, GatewayModbusSpace::kCoil, GatewayModbusAccess::kWriteOnly,
GatewayModbusGeneratedKind::kShortOff, "off", "off"},
{2, GatewayModbusSpace::kCoil, GatewayModbusAccess::kWriteOnly,
GatewayModbusGeneratedKind::kShortRecallMax, "recall_max", "recall max"},
{3, GatewayModbusSpace::kCoil, GatewayModbusAccess::kWriteOnly,
GatewayModbusGeneratedKind::kShortRecallMin, "recall_min", "recall min"},
}};
constexpr std::array<GeneratedPointSpec, 19> kGeneratedDiscreteInputs{{
{0, GatewayModbusSpace::kDiscreteInput, GatewayModbusAccess::kReadOnly,
GatewayModbusGeneratedKind::kShortDiscovered, "discovered", "discovered"},
{1, GatewayModbusSpace::kDiscreteInput, GatewayModbusAccess::kReadOnly,
GatewayModbusGeneratedKind::kShortOnline, "online", "online"},
{2, GatewayModbusSpace::kDiscreteInput, GatewayModbusAccess::kReadOnly,
GatewayModbusGeneratedKind::kShortSupportsDt1, "supports_dt1", "supports DT1"},
{3, GatewayModbusSpace::kDiscreteInput, GatewayModbusAccess::kReadOnly,
GatewayModbusGeneratedKind::kShortSupportsDt4, "supports_dt4", "supports DT4"},
{4, GatewayModbusSpace::kDiscreteInput, GatewayModbusAccess::kReadOnly,
GatewayModbusGeneratedKind::kShortSupportsDt5, "supports_dt5", "supports DT5"},
{5, GatewayModbusSpace::kDiscreteInput, GatewayModbusAccess::kReadOnly,
GatewayModbusGeneratedKind::kShortSupportsDt6, "supports_dt6", "supports DT6"},
{6, GatewayModbusSpace::kDiscreteInput, GatewayModbusAccess::kReadOnly,
GatewayModbusGeneratedKind::kShortSupportsDt8, "supports_dt8", "supports DT8"},
{7, GatewayModbusSpace::kDiscreteInput, GatewayModbusAccess::kReadOnly,
GatewayModbusGeneratedKind::kShortGroupMaskKnown, "group_mask_known", "group mask known"},
{8, GatewayModbusSpace::kDiscreteInput, GatewayModbusAccess::kReadOnly,
GatewayModbusGeneratedKind::kShortActualLevelKnown, "actual_level_known", "actual level known"},
{9, GatewayModbusSpace::kDiscreteInput, GatewayModbusAccess::kReadOnly,
GatewayModbusGeneratedKind::kShortSceneKnown, "scene_known", "scene known"},
{10, GatewayModbusSpace::kDiscreteInput, GatewayModbusAccess::kReadOnly,
GatewayModbusGeneratedKind::kShortSettingsKnown, "settings_known", "settings known"},
{16, GatewayModbusSpace::kDiscreteInput, GatewayModbusAccess::kReadOnly,
GatewayModbusGeneratedKind::kShortControlGearPresent, "control_gear_present",
"control gear present"},
{17, GatewayModbusSpace::kDiscreteInput, GatewayModbusAccess::kReadOnly,
GatewayModbusGeneratedKind::kShortLampFailure, "lamp_failure", "lamp failure"},
{18, GatewayModbusSpace::kDiscreteInput, GatewayModbusAccess::kReadOnly,
GatewayModbusGeneratedKind::kShortLampPowerOn, "lamp_power_on", "lamp power on"},
{19, GatewayModbusSpace::kDiscreteInput, GatewayModbusAccess::kReadOnly,
GatewayModbusGeneratedKind::kShortLimitError, "limit_error", "limit error"},
{20, GatewayModbusSpace::kDiscreteInput, GatewayModbusAccess::kReadOnly,
GatewayModbusGeneratedKind::kShortFadingCompleted, "fading_completed", "fading completed"},
{21, GatewayModbusSpace::kDiscreteInput, GatewayModbusAccess::kReadOnly,
GatewayModbusGeneratedKind::kShortResetState, "reset_state", "reset state"},
{22, GatewayModbusSpace::kDiscreteInput, GatewayModbusAccess::kReadOnly,
GatewayModbusGeneratedKind::kShortMissingShortAddress, "missing_short_address",
"missing short address"},
{23, GatewayModbusSpace::kDiscreteInput, GatewayModbusAccess::kReadOnly,
GatewayModbusGeneratedKind::kShortPowerSupplyFault, "power_supply_fault",
"power supply fault"},
}};
constexpr std::array<GeneratedPointSpec, 9> kGeneratedHoldingRegisters{{
{0, GatewayModbusSpace::kHoldingRegister, GatewayModbusAccess::kReadWrite,
GatewayModbusGeneratedKind::kShortBrightness, "brightness", "brightness"},
{1, GatewayModbusSpace::kHoldingRegister, GatewayModbusAccess::kReadWrite,
GatewayModbusGeneratedKind::kShortColorTemperature, "color_temperature",
"color temperature"},
{2, GatewayModbusSpace::kHoldingRegister, GatewayModbusAccess::kReadWrite,
GatewayModbusGeneratedKind::kShortGroupMask, "group_mask", "group mask"},
{3, GatewayModbusSpace::kHoldingRegister, GatewayModbusAccess::kReadWrite,
GatewayModbusGeneratedKind::kShortPowerOnLevel, "power_on_level", "power-on level"},
{4, GatewayModbusSpace::kHoldingRegister, GatewayModbusAccess::kReadWrite,
GatewayModbusGeneratedKind::kShortSystemFailureLevel, "system_failure_level",
"system-failure level"},
{5, GatewayModbusSpace::kHoldingRegister, GatewayModbusAccess::kReadWrite,
GatewayModbusGeneratedKind::kShortMinLevel, "min_level", "minimum level"},
{6, GatewayModbusSpace::kHoldingRegister, GatewayModbusAccess::kReadWrite,
GatewayModbusGeneratedKind::kShortMaxLevel, "max_level", "maximum level"},
{7, GatewayModbusSpace::kHoldingRegister, GatewayModbusAccess::kReadWrite,
GatewayModbusGeneratedKind::kShortFadeTime, "fade_time", "fade time"},
{8, GatewayModbusSpace::kHoldingRegister, GatewayModbusAccess::kReadWrite,
GatewayModbusGeneratedKind::kShortFadeRate, "fade_rate", "fade rate"},
}};
constexpr std::array<GeneratedPointSpec, 13> kGeneratedInputRegisters{{
{0, GatewayModbusSpace::kInputRegister, GatewayModbusAccess::kReadOnly,
GatewayModbusGeneratedKind::kShortInventoryState, "inventory_state", "inventory state"},
{1, GatewayModbusSpace::kInputRegister, GatewayModbusAccess::kReadOnly,
GatewayModbusGeneratedKind::kShortPrimaryType, "primary_type", "primary type"},
{2, GatewayModbusSpace::kInputRegister, GatewayModbusAccess::kReadOnly,
GatewayModbusGeneratedKind::kShortTypeMask, "type_mask", "device type mask"},
{3, GatewayModbusSpace::kInputRegister, GatewayModbusAccess::kReadOnly,
GatewayModbusGeneratedKind::kShortActualLevel, "actual_level", "actual level"},
{4, GatewayModbusSpace::kInputRegister, GatewayModbusAccess::kReadOnly,
GatewayModbusGeneratedKind::kShortSceneId, "scene_id", "scene id"},
{5, GatewayModbusSpace::kInputRegister, GatewayModbusAccess::kReadOnly,
GatewayModbusGeneratedKind::kShortRawStatus, "raw_status", "raw status"},
{6, GatewayModbusSpace::kInputRegister, GatewayModbusAccess::kReadOnly,
GatewayModbusGeneratedKind::kShortGroupMask, "group_mask", "group mask"},
{7, GatewayModbusSpace::kInputRegister, GatewayModbusAccess::kReadOnly,
GatewayModbusGeneratedKind::kShortPowerOnLevel, "power_on_level", "power-on level"},
{8, GatewayModbusSpace::kInputRegister, GatewayModbusAccess::kReadOnly,
GatewayModbusGeneratedKind::kShortSystemFailureLevel, "system_failure_level",
"system-failure level"},
{9, GatewayModbusSpace::kInputRegister, GatewayModbusAccess::kReadOnly,
GatewayModbusGeneratedKind::kShortMinLevel, "min_level", "minimum level"},
{10, GatewayModbusSpace::kInputRegister, GatewayModbusAccess::kReadOnly,
GatewayModbusGeneratedKind::kShortMaxLevel, "max_level", "maximum level"},
{11, GatewayModbusSpace::kInputRegister, GatewayModbusAccess::kReadOnly,
GatewayModbusGeneratedKind::kShortFadeTime, "fade_time", "fade time"},
{12, GatewayModbusSpace::kInputRegister, GatewayModbusAccess::kReadOnly,
GatewayModbusGeneratedKind::kShortFadeRate, "fade_rate", "fade rate"},
}};
constexpr GeneratedDiagnosticBitSpec kGeneratedDiagnosticBits[] = {
{0, 1, "dt1", "circuitFailure", "dt1_circuit_failure", "DT1 circuit failure"},
{1, 1, "dt1", "batteryDurationFailure", "dt1_battery_duration_failure", "DT1 battery duration failure"},
{2, 1, "dt1", "batteryFailure", "dt1_battery_failure", "DT1 battery failure"},
{3, 1, "dt1", "emergencyLampFailure", "dt1_emergency_lamp_failure", "DT1 emergency lamp failure"},
{4, 1, "dt1", "functionTestMaxDelayExceeded", "dt1_function_test_delay_exceeded", "DT1 function test delay exceeded"},
{5, 1, "dt1", "durationTestMaxDelayExceeded", "dt1_duration_test_delay_exceeded", "DT1 duration test delay exceeded"},
{6, 1, "dt1", "functionTestFailed", "dt1_function_test_failed", "DT1 function test failed"},
{7, 1, "dt1", "durationTestFailed", "dt1_duration_test_failed", "DT1 duration test failed"},
{8, 1, "dt1", "inhibitMode", "dt1_inhibit_mode", "DT1 inhibit mode"},
{9, 1, "dt1", "functionTestResultValid", "dt1_function_result_valid", "DT1 function result valid"},
{10, 1, "dt1", "durationTestResultValid", "dt1_duration_result_valid", "DT1 duration result valid"},
{11, 1, "dt1", "batteryFullyCharged", "dt1_battery_fully_charged", "DT1 battery fully charged"},
{12, 1, "dt1", "functionTestRequestPending", "dt1_function_request_pending", "DT1 function request pending"},
{13, 1, "dt1", "durationTestRequestPending", "dt1_duration_request_pending", "DT1 duration request pending"},
{14, 1, "dt1", "identificationActive", "dt1_identification_active", "DT1 identification active"},
{15, 1, "dt1", "physicallySelected", "dt1_physically_selected", "DT1 physically selected"},
{16, 1, "dt1", "restModeActive", "dt1_rest_mode_active", "DT1 rest mode active"},
{17, 1, "dt1", "normalModeActive", "dt1_normal_mode_active", "DT1 normal mode active"},
{18, 1, "dt1", "emergencyModeActive", "dt1_emergency_mode_active", "DT1 emergency mode active"},
{19, 1, "dt1", "extendedEmergencyModeActive", "dt1_extended_mode_active", "DT1 extended emergency mode active"},
{20, 1, "dt1", "functionTestInProgress", "dt1_function_test_in_progress", "DT1 function test in progress"},
{21, 1, "dt1", "durationTestInProgress", "dt1_duration_test_in_progress", "DT1 duration test in progress"},
{22, 1, "dt1", "hardwiredInhibitActive", "dt1_hardwired_inhibit_active", "DT1 hardwired inhibit active"},
{23, 1, "dt1", "hardwiredSwitchOn", "dt1_hardwired_switch_on", "DT1 hardwired switch on"},
{24, 1, "dt1", "integralEmergencyControlGear", "dt1_integral_emergency", "DT1 integral emergency gear"},
{25, 1, "dt1", "maintainedControlGear", "dt1_maintained", "DT1 maintained gear"},
{26, 1, "dt1", "switchedMaintainedControlGear", "dt1_switched_maintained", "DT1 switched maintained gear"},
{27, 1, "dt1", "autoTestCapability", "dt1_auto_test_capability", "DT1 auto test capability"},
{28, 1, "dt1", "adjustableEmergencyLevel", "dt1_adjustable_level", "DT1 adjustable emergency level"},
{29, 1, "dt1", "hardwiredInhibitSupported", "dt1_hardwired_inhibit_supported", "DT1 hardwired inhibit supported"},
{30, 1, "dt1", "physicalSelectionSupported", "dt1_physical_selection_supported", "DT1 physical selection supported"},
{31, 1, "dt1", "relightInRestModeSupported", "dt1_relight_rest_supported", "DT1 relight in rest mode supported"},
{32, 4, "dt4", "leadingEdgeModeRunning", "dt4_leading_edge_running", "DT4 leading edge running"},
{33, 4, "dt4", "trailingEdgeModeRunning", "dt4_trailing_edge_running", "DT4 trailing edge running"},
{34, 4, "dt4", "referenceMeasurementRunning", "dt4_reference_running", "DT4 reference measurement running"},
{35, 4, "dt4", "nonLogarithmicDimmingCurveActive", "dt4_non_log_curve_active", "DT4 non-log curve active"},
{36, 4, "dt4", "canQueryLoadOverCurrentShutdown", "dt4_can_load_over_current_shutdown", "DT4 can query over-current shutdown"},
{37, 4, "dt4", "canQueryOpenCircuitDetection", "dt4_can_open_circuit", "DT4 can query open circuit"},
{38, 4, "dt4", "canQueryLoadDecrease", "dt4_can_load_decrease", "DT4 can query load decrease"},
{39, 4, "dt4", "canQueryLoadIncrease", "dt4_can_load_increase", "DT4 can query load increase"},
{40, 4, "dt4", "canQueryThermalShutdown", "dt4_can_thermal_shutdown", "DT4 can query thermal shutdown"},
{41, 4, "dt4", "canQueryThermalOverloadReduction", "dt4_can_thermal_overload", "DT4 can query thermal overload"},
{42, 4, "dt4", "physicalSelectionSupported", "dt4_physical_selection_supported", "DT4 physical selection supported"},
{43, 4, "dt4", "canQueryTemperature", "dt4_can_temperature", "DT4 can query temperature"},
{44, 4, "dt4", "canQuerySupplyVoltage", "dt4_can_supply_voltage", "DT4 can query supply voltage"},
{45, 4, "dt4", "canQuerySupplyFrequency", "dt4_can_supply_frequency", "DT4 can query supply frequency"},
{46, 4, "dt4", "canQueryLoadVoltage", "dt4_can_load_voltage", "DT4 can query load voltage"},
{47, 4, "dt4", "canQueryLoadCurrent", "dt4_can_load_current", "DT4 can query load current"},
{48, 4, "dt4", "canQueryRealLoadPower", "dt4_can_load_power", "DT4 can query load power"},
{49, 4, "dt4", "canQueryLoadRating", "dt4_can_load_rating", "DT4 can query load rating"},
{50, 4, "dt4", "canQueryCurrentOverloadReduction", "dt4_can_current_overload", "DT4 can query current overload"},
{51, 4, "dt4", "canSelectNonLogarithmicDimmingCurve", "dt4_can_non_log_curve", "DT4 can select non-log curve"},
{52, 4, "dt4", "canQueryUnsuitableLoad", "dt4_can_unsuitable_load", "DT4 can query unsuitable load"},
{53, 4, "dt4", "loadOverCurrentShutdown", "dt4_load_over_current_shutdown", "DT4 load over-current shutdown"},
{54, 4, "dt4", "openCircuitDetected", "dt4_open_circuit_detected", "DT4 open circuit detected"},
{55, 4, "dt4", "loadDecreaseDetected", "dt4_load_decrease_detected", "DT4 load decrease detected"},
{56, 4, "dt4", "loadIncreaseDetected", "dt4_load_increase_detected", "DT4 load increase detected"},
{57, 4, "dt4", "thermalShutdown", "dt4_thermal_shutdown", "DT4 thermal shutdown"},
{58, 4, "dt4", "thermalOverloadReduction", "dt4_thermal_overload", "DT4 thermal overload reduction"},
{59, 4, "dt4", "referenceMeasurementFailedStatus", "dt4_reference_failed", "DT4 reference failed"},
{60, 4, "dt4", "loadUnsuitableForSelectedMethod", "dt4_unsuitable_load", "DT4 unsuitable load"},
{61, 4, "dt4", "supplyVoltageOutOfLimits", "dt4_supply_voltage_limits", "DT4 supply voltage out of limits"},
{62, 4, "dt4", "supplyFrequencyOutOfLimits", "dt4_supply_frequency_limits", "DT4 supply frequency out of limits"},
{63, 4, "dt4", "loadVoltageOutOfLimits", "dt4_load_voltage_limits", "DT4 load voltage out of limits"},
{64, 4, "dt4", "loadCurrentOverloadReduction", "dt4_load_current_overload", "DT4 load current overload"},
{65, 5, "dt5", "outputRange0To10VSelectable", "dt5_output_range_selectable", "DT5 output range selectable"},
{66, 5, "dt5", "internalPullUpSelectable", "dt5_pullup_selectable", "DT5 pull-up selectable"},
{67, 5, "dt5", "outputFaultDetectionSelectable", "dt5_fault_detection_selectable", "DT5 fault detection selectable"},
{68, 5, "dt5", "mainsRelay", "dt5_mains_relay", "DT5 mains relay"},
{69, 5, "dt5", "outputLevelQueryable", "dt5_output_level_queryable", "DT5 output level queryable"},
{70, 5, "dt5", "nonLogarithmicDimmingCurveSupported", "dt5_non_log_supported", "DT5 non-log curve supported"},
{71, 5, "dt5", "physicalSelectionByOutputLossSupported", "dt5_output_loss_selection", "DT5 output-loss selection supported"},
{72, 5, "dt5", "physicalSelectionSwitchSupported", "dt5_selection_switch", "DT5 selection switch supported"},
{73, 5, "dt5", "outputFaultDetected", "dt5_output_fault", "DT5 output fault detected"},
{74, 5, "dt5", "zeroToTenVoltOperation", "dt5_zero_to_ten", "DT5 0-10V operation"},
{75, 5, "dt5", "internalPullUpOn", "dt5_pullup_on", "DT5 pull-up on"},
{76, 5, "dt5", "nonLogarithmicDimmingCurveActive", "dt5_non_log_active", "DT5 non-log curve active"},
{77, 6, "dt6", "ledPowerSupplyIntegrated", "dt6_power_supply_integrated", "DT6 power supply integrated"},
{78, 6, "dt6", "ledModuleIntegrated", "dt6_module_integrated", "DT6 LED module integrated"},
{79, 6, "dt6", "acSupplyPossible", "dt6_ac_supply_possible", "DT6 AC supply possible"},
{80, 6, "dt6", "dcSupplyPossible", "dt6_dc_supply_possible", "DT6 DC supply possible"},
{81, 6, "dt6", "pwmModePossible", "dt6_pwm_possible", "DT6 PWM possible"},
{82, 6, "dt6", "amModePossible", "dt6_am_possible", "DT6 AM possible"},
{83, 6, "dt6", "currentControlledOutputPossible", "dt6_current_control_possible", "DT6 current control possible"},
{84, 6, "dt6", "highCurrentPulseModePossible", "dt6_high_current_possible", "DT6 high current possible"},
{85, 6, "dt6", "canQueryShortCircuit", "dt6_can_short_circuit", "DT6 can query short circuit"},
{86, 6, "dt6", "canQueryOpenCircuit", "dt6_can_open_circuit", "DT6 can query open circuit"},
{87, 6, "dt6", "canQueryLoadDecrease", "dt6_can_load_decrease", "DT6 can query load decrease"},
{88, 6, "dt6", "canQueryLoadIncrease", "dt6_can_load_increase", "DT6 can query load increase"},
{89, 6, "dt6", "canQueryCurrentProtector", "dt6_can_current_protector", "DT6 can query current protector"},
{90, 6, "dt6", "canQueryThermalShutdown", "dt6_can_thermal_shutdown", "DT6 can query thermal shutdown"},
{91, 6, "dt6", "canQueryThermalOverloadReduction", "dt6_can_thermal_overload", "DT6 can query thermal overload"},
{92, 6, "dt6", "shortCircuit", "dt6_short_circuit", "DT6 short circuit"},
{93, 6, "dt6", "openCircuit", "dt6_open_circuit", "DT6 open circuit"},
{94, 6, "dt6", "loadDecrease", "dt6_load_decrease", "DT6 load decrease"},
{95, 6, "dt6", "loadIncrease", "dt6_load_increase", "DT6 load increase"},
{96, 6, "dt6", "currentProtectorActive", "dt6_current_protector_active", "DT6 current protector active"},
{97, 6, "dt6", "thermalShutdown", "dt6_thermal_shutdown", "DT6 thermal shutdown"},
};
constexpr GeneratedDiagnosticBitSpec kGeneratedDiagnosticBitsTail[] = {
{98, 6, "dt6", "thermalOverloadReduction", "dt6_thermal_overload", "DT6 thermal overload"},
{99, 6, "dt6", "referenceMeasurementFailed", "dt6_reference_failed", "DT6 reference failed"},
{100, 6, "dt6", "pwmModeActive", "dt6_pwm_active", "DT6 PWM active"},
{101, 6, "dt6", "amModeActive", "dt6_am_active", "DT6 AM active"},
{102, 6, "dt6", "currentControlledOutput", "dt6_current_controlled_output", "DT6 current controlled output"},
{103, 6, "dt6", "highCurrentPulseModeActive", "dt6_high_current_active", "DT6 high current active"},
{104, 6, "dt6", "nonLogarithmicDimmingCurveActive", "dt6_non_log_active", "DT6 non-log curve active"},
{105, 8, "dt8_status", "xyOutOfRange", "dt8_xy_out_of_range", "DT8 xy out of range"},
{106, 8, "dt8_status", "ctOutOfRange", "dt8_ct_out_of_range", "DT8 CT out of range"},
{107, 8, "dt8_status", "autoCalibrationActive", "dt8_auto_cal_active", "DT8 auto calibration active"},
{108, 8, "dt8_status", "autoCalibrationSuccess", "dt8_auto_cal_success", "DT8 auto calibration success"},
{109, 8, "dt8_status", "xyActive", "dt8_xy_active", "DT8 xy active"},
{110, 8, "dt8_status", "ctActive", "dt8_ct_active", "DT8 CT active"},
{111, 8, "dt8_status", "primaryNActive", "dt8_primary_active", "DT8 primary-N active"},
{112, 8, "dt8_status", "rgbwafActive", "dt8_rgbwaf_active", "DT8 RGBWAF active"},
{113, 8, "dt8_status", "xyCapable", "dt8_xy_capable", "DT8 xy capable"},
{114, 8, "dt8_status", "ctCapable", "dt8_ct_capable", "DT8 CT capable"},
{115, 8, "dt8_status", "primaryNCapable", "dt8_primary_capable", "DT8 primary-N capable"},
{116, 8, "dt8_status", "rgbwafCapable", "dt8_rgbwaf_capable", "DT8 RGBWAF capable"},
{117, 6, "dt6", "physicalSelectionSupported", "dt6_physical_selection_supported", "DT6 physical selection supported"},
{118, 6, "dt6", "currentProtectorEnabled", "dt6_current_protector_enabled", "DT6 current protector enabled"},
{119, 1, "dt1", "controlGearFailure", "dt1_control_gear_failure", "DT1 control gear failure"},
};
constexpr size_t kGeneratedDiagnosticBitCount =
sizeof(kGeneratedDiagnosticBits) / sizeof(kGeneratedDiagnosticBits[0]) +
sizeof(kGeneratedDiagnosticBitsTail) / sizeof(kGeneratedDiagnosticBitsTail[0]);
constexpr size_t kGeneratedPointsPerShort = kGeneratedCoils.size() +
kGeneratedDiscreteInputs.size() +
kGeneratedHoldingRegisters.size() +
kGeneratedInputRegisters.size() +
kGeneratedDiagnosticBitCount;
constexpr size_t kGeneratedPointCount = kShortAddressCount * kGeneratedPointsPerShort;
uint16_t baseForSpace(GatewayModbusSpace space) {
switch (space) {
case GatewayModbusSpace::kCoil:
return kCoilBase;
case GatewayModbusSpace::kDiscreteInput:
return kDiscreteInputBase;
case GatewayModbusSpace::kInputRegister:
return kInputRegisterBase;
case GatewayModbusSpace::kHoldingRegister:
return kHoldingRegisterBase;
}
return kHoldingRegisterBase;
}
std::optional<GatewayModbusSpace> spaceForObjectType(BridgeObjectType type) {
switch (type) {
case BridgeObjectType::coil:
return GatewayModbusSpace::kCoil;
case BridgeObjectType::discreteInput:
return GatewayModbusSpace::kDiscreteInput;
case BridgeObjectType::inputRegister:
return GatewayModbusSpace::kInputRegister;
case BridgeObjectType::holdingRegister:
return GatewayModbusSpace::kHoldingRegister;
default:
return std::nullopt;
}
}
GatewayModbusAccess accessForSpace(GatewayModbusSpace space) {
switch (space) {
case GatewayModbusSpace::kCoil:
case GatewayModbusSpace::kHoldingRegister:
return GatewayModbusAccess::kReadWrite;
case GatewayModbusSpace::kDiscreteInput:
case GatewayModbusSpace::kInputRegister:
return GatewayModbusAccess::kReadOnly;
}
return GatewayModbusAccess::kReadOnly;
}
std::string generatedId(uint8_t short_address, const char* suffix) {
char buffer[64];
std::snprintf(buffer, sizeof(buffer), "dali_%02u_%s", static_cast<unsigned>(short_address),
suffix == nullptr ? "point" : suffix);
return buffer;
}
std::string generatedName(uint8_t short_address, const char* name) {
char buffer[96];
std::snprintf(buffer, sizeof(buffer), "DALI %u %s", static_cast<unsigned>(short_address),
name == nullptr ? "point" : name);
return buffer;
}
const char* literalOrEmpty(const char* value) {
return value == nullptr ? "" : value;
}
PointKey keyForPoint(const GatewayModbusPoint& point) {
return PointKey{point.space, point.address};
}
bool pointLess(const GatewayModbusPoint& lhs, const GatewayModbusPoint& rhs) {
return keyForPoint(lhs) < keyForPoint(rhs);
}
bool pointKeyEqual(const GatewayModbusPoint& lhs, const GatewayModbusPoint& rhs) {
return lhs.space == rhs.space && lhs.address == rhs.address;
}
bool pointKeyEqual(const GatewayModbusPoint& point, const PointKey& key) {
return point.space == key.space && point.address == key.address;
}
std::vector<GatewayModbusPoint>::const_iterator findStoredPoint(
const std::vector<GatewayModbusPoint>& points, PointKey key) {
const auto found = std::lower_bound(
points.begin(), points.end(), key,
[](const GatewayModbusPoint& point, const PointKey& value) {
return keyForPoint(point) < value;
});
if (found == points.end() || !pointKeyEqual(*found, key)) {
return points.end();
}
return found;
}
GatewayModbusPoint makeGeneratedPoint(uint8_t short_address,
const GeneratedPointSpec& spec) {
const uint16_t address = static_cast<uint16_t>(baseForSpace(spec.space) +
short_address * kShortStride + spec.offset);
GatewayModbusPoint point;
point.space = spec.space;
point.access = spec.access;
point.address = address;
point.generated = true;
point.generated_kind = spec.kind;
point.generated_suffix = spec.suffix == nullptr ? "point" : spec.suffix;
point.generated_name = spec.name == nullptr ? "point" : spec.name;
point.short_address = short_address;
return point;
}
GatewayModbusPoint makeGeneratedDiagnosticPoint(uint8_t short_address,
const GeneratedDiagnosticBitSpec& spec) {
const uint16_t address = static_cast<uint16_t>(kDiagnosticDiscreteInputBase +
short_address * kDiagnosticStride + spec.offset);
GatewayModbusPoint point;
point.space = GatewayModbusSpace::kDiscreteInput;
point.access = GatewayModbusAccess::kReadOnly;
point.address = address;
point.generated = true;
point.generated_kind = GatewayModbusGeneratedKind::kShortDiagnosticBit;
point.generated_suffix = spec.suffix == nullptr ? "point" : spec.suffix;
point.generated_name = spec.name == nullptr ? "point" : spec.name;
point.short_address = short_address;
point.diagnostic_snapshot = literalOrEmpty(spec.snapshot);
point.diagnostic_bool = literalOrEmpty(spec.bool_key);
point.diagnostic_device_type = spec.device_type;
return point;
}
void appendIfNotOverridden(const std::vector<GatewayModbusPoint>& stored_points,
std::vector<GatewayModbusPoint>* points,
GatewayModbusPoint point) {
if (points == nullptr) {
return;
}
if (findStoredPoint(stored_points, keyForPoint(point)) != stored_points.end()) {
return;
}
points->push_back(std::move(point));
}
std::optional<GatewayModbusPoint> generatedPointForAddress(GatewayModbusSpace space,
uint16_t address) {
if (space == GatewayModbusSpace::kDiscreteInput &&
address >= kDiagnosticDiscreteInputBase) {
const uint16_t relative = static_cast<uint16_t>(address - kDiagnosticDiscreteInputBase);
const uint8_t short_address = static_cast<uint8_t>(relative / kDiagnosticStride);
const uint16_t offset = static_cast<uint16_t>(relative % kDiagnosticStride);
if (short_address >= kShortAddressCount) {
return std::nullopt;
}
for (const auto& spec : kGeneratedDiagnosticBits) {
if (spec.offset == offset) {
return makeGeneratedDiagnosticPoint(short_address, spec);
}
}
for (const auto& spec : kGeneratedDiagnosticBitsTail) {
if (spec.offset == offset) {
return makeGeneratedDiagnosticPoint(short_address, spec);
}
}
return std::nullopt;
}
const uint16_t base = baseForSpace(space);
if (address < base) {
return std::nullopt;
}
const uint16_t relative = static_cast<uint16_t>(address - base);
const uint8_t short_address = static_cast<uint8_t>(relative / kShortStride);
const uint16_t offset = static_cast<uint16_t>(relative % kShortStride);
if (short_address >= kShortAddressCount) {
return std::nullopt;
}
const auto find_regular_point = [short_address, offset](const auto& specs)
-> std::optional<GatewayModbusPoint> {
for (const auto& spec : specs) {
if (spec.offset == offset) {
return makeGeneratedPoint(short_address, spec);
}
}
return std::nullopt;
};
switch (space) {
case GatewayModbusSpace::kCoil:
return find_regular_point(kGeneratedCoils);
case GatewayModbusSpace::kDiscreteInput:
return find_regular_point(kGeneratedDiscreteInputs);
case GatewayModbusSpace::kHoldingRegister:
return find_regular_point(kGeneratedHoldingRegisters);
case GatewayModbusSpace::kInputRegister:
return find_regular_point(kGeneratedInputRegisters);
}
return std::nullopt;
}
GatewayModbusPointBinding toBinding(const GatewayModbusPoint& point) {
GatewayModbusPointBinding binding;
binding.model_id = point.model_id;
binding.space = point.space;
binding.address = point.address;
if (point.generated) {
const auto short_address = static_cast<uint8_t>(point.short_address < 0 ? 0 : point.short_address);
binding.id = generatedId(short_address, point.generated_suffix);
binding.name = generatedName(short_address, point.generated_name);
} else {
binding.id = point.id;
binding.name = point.name;
}
binding.generated = point.generated;
binding.generated_kind = point.generated_kind;
binding.short_address = point.short_address;
binding.access = point.access;
binding.bit_index = point.bit_index;
binding.diagnostic_snapshot = literalOrEmpty(point.diagnostic_snapshot);
binding.diagnostic_bool = literalOrEmpty(point.diagnostic_bool);
binding.diagnostic_device_type = point.diagnostic_device_type;
return binding;
}
int clampedInt(const DaliValue::Object& json, const std::string& key, int fallback,
int min_value, int max_value) {
const int value = getObjectInt(json, key).value_or(fallback);
return std::clamp(value, min_value, max_value);
}
uint32_t clampedU32(const DaliValue::Object& json, const std::string& key, uint32_t fallback,
uint32_t min_value, uint32_t max_value) {
const int value = getObjectInt(json, key).value_or(static_cast<int>(fallback));
return static_cast<uint32_t>(std::clamp(value, static_cast<int>(min_value),
static_cast<int>(max_value)));
}
size_t clampedSize(const DaliValue::Object& json, const std::string& key, size_t fallback,
size_t min_value, size_t max_value) {
const int value = getObjectInt(json, key).value_or(static_cast<int>(fallback));
return static_cast<size_t>(std::clamp(value, static_cast<int>(min_value),
static_cast<int>(max_value)));
}
} // namespace
bool GatewayModbusTransportIsTcp(const std::string& transport) {
return transport.empty() || transport == "tcp" || transport == "tcp-server";
}
bool GatewayModbusTransportIsRtu(const std::string& transport) {
return transport == "rtu" || transport == "rtu-server" || transport == "modbus-rtu";
}
bool GatewayModbusTransportIsAscii(const std::string& transport) {
return transport == "ascii" || transport == "ascii-server" || transport == "modbus-ascii";
}
bool GatewayModbusTransportIsSerial(const std::string& transport) {
return GatewayModbusTransportIsRtu(transport) || GatewayModbusTransportIsAscii(transport);
}
std::optional<GatewayModbusConfig> GatewayModbusConfigFromValue(const DaliValue* value) {
if (value == nullptr || value->asObject() == nullptr) {
return std::nullopt;
}
const auto& json = *value->asObject();
GatewayModbusConfig config;
config.transport = getObjectString(json, "transport").value_or("tcp-server");
config.host = getObjectString(json, "host").value_or("");
config.port = static_cast<uint16_t>(
getObjectInt(json, "port").value_or(kGatewayModbusDefaultTcpPort));
config.unit_id = static_cast<uint8_t>(getObjectInt(json, "unitID").value_or(
getObjectInt(json, "unitId").value_or(getObjectInt(json, "unit_id").value_or(1))));
if (const auto* serial_value = getObjectValue(json, "serial")) {
if (const auto* serial = serial_value->asObject()) {
config.serial.uart_port = clampedInt(*serial, "uartPort", config.serial.uart_port, 0, 2);
config.serial.tx_pin = clampedInt(*serial, "txPin", config.serial.tx_pin, -1, 48);
config.serial.rx_pin = clampedInt(*serial, "rxPin", config.serial.rx_pin, -1, 48);
config.serial.baudrate = clampedU32(*serial, "baudrate", config.serial.baudrate,
1200, 921600);
config.serial.data_bits = clampedInt(*serial, "dataBits", config.serial.data_bits, 7, 8);
config.serial.parity = getObjectString(*serial, "parity").value_or(config.serial.parity);
config.serial.stop_bits = clampedInt(*serial, "stopBits", config.serial.stop_bits, 1, 2);
config.serial.rx_buffer_size = clampedSize(*serial, "rxBufferBytes",
config.serial.rx_buffer_size, 128, 4096);
config.serial.tx_buffer_size = clampedSize(*serial, "txBufferBytes",
config.serial.tx_buffer_size, 0, 4096);
config.serial.response_timeout_ms = clampedU32(*serial, "responseTimeoutMs",
config.serial.response_timeout_ms, 1, 1000);
config.serial.inter_frame_gap_us = clampedU32(*serial, "interFrameGapUs",
config.serial.inter_frame_gap_us, 1000,
100000);
if (const auto* rs485_value = getObjectValue(*serial, "rs485")) {
if (const auto* rs485 = rs485_value->asObject()) {
config.serial.rs485.enabled = getObjectBool(*rs485, "enabled")
.value_or(config.serial.rs485.enabled);
config.serial.rs485.de_pin = clampedInt(*rs485, "dePin",
config.serial.rs485.de_pin, -1, 48);
}
}
}
}
return config;
}
DaliValue GatewayModbusConfigToValue(const GatewayModbusConfig& config) {
DaliValue::Object out;
out["transport"] = config.transport;
out["host"] = config.host;
out["port"] = static_cast<int>(config.port);
out["unitID"] = static_cast<int>(config.unit_id);
DaliValue::Object serial;
serial["uartPort"] = config.serial.uart_port;
serial["txPin"] = config.serial.tx_pin;
serial["rxPin"] = config.serial.rx_pin;
serial["baudrate"] = static_cast<int>(config.serial.baudrate);
serial["dataBits"] = config.serial.data_bits;
serial["parity"] = config.serial.parity;
serial["stopBits"] = config.serial.stop_bits;
serial["rxBufferBytes"] = static_cast<int>(config.serial.rx_buffer_size);
serial["txBufferBytes"] = static_cast<int>(config.serial.tx_buffer_size);
serial["responseTimeoutMs"] = static_cast<int>(config.serial.response_timeout_ms);
serial["interFrameGapUs"] = static_cast<int>(config.serial.inter_frame_gap_us);
DaliValue::Object rs485;
rs485["enabled"] = config.serial.rs485.enabled;
rs485["dePin"] = config.serial.rs485.de_pin;
serial["rs485"] = std::move(rs485);
out["serial"] = std::move(serial);
return DaliValue(std::move(out));
}
const char* GatewayModbusSpaceToString(GatewayModbusSpace space) {
switch (space) {
case GatewayModbusSpace::kCoil:
return "coil";
case GatewayModbusSpace::kDiscreteInput:
return "discrete_input";
case GatewayModbusSpace::kHoldingRegister:
return "holding_register";
case GatewayModbusSpace::kInputRegister:
return "input_register";
}
return "unknown";
}
const char* GatewayModbusAccessToString(GatewayModbusAccess access) {
switch (access) {
case GatewayModbusAccess::kReadOnly:
return "read_only";
case GatewayModbusAccess::kWriteOnly:
return "write_only";
case GatewayModbusAccess::kReadWrite:
return "read_write";
}
return "unknown";
}
const char* GatewayModbusGeneratedKindToString(GatewayModbusGeneratedKind kind) {
switch (kind) {
case GatewayModbusGeneratedKind::kShortOn:
return "short_on";
case GatewayModbusGeneratedKind::kShortOff:
return "short_off";
case GatewayModbusGeneratedKind::kShortRecallMax:
return "short_recall_max";
case GatewayModbusGeneratedKind::kShortRecallMin:
return "short_recall_min";
case GatewayModbusGeneratedKind::kShortDiscovered:
return "short_discovered";
case GatewayModbusGeneratedKind::kShortOnline:
return "short_online";
case GatewayModbusGeneratedKind::kShortSupportsDt1:
return "short_supports_dt1";
case GatewayModbusGeneratedKind::kShortSupportsDt4:
return "short_supports_dt4";
case GatewayModbusGeneratedKind::kShortSupportsDt5:
return "short_supports_dt5";
case GatewayModbusGeneratedKind::kShortSupportsDt6:
return "short_supports_dt6";
case GatewayModbusGeneratedKind::kShortSupportsDt8:
return "short_supports_dt8";
case GatewayModbusGeneratedKind::kShortGroupMaskKnown:
return "short_group_mask_known";
case GatewayModbusGeneratedKind::kShortActualLevelKnown:
return "short_actual_level_known";
case GatewayModbusGeneratedKind::kShortSceneKnown:
return "short_scene_known";
case GatewayModbusGeneratedKind::kShortSettingsKnown:
return "short_settings_known";
case GatewayModbusGeneratedKind::kShortControlGearPresent:
return "short_control_gear_present";
case GatewayModbusGeneratedKind::kShortLampFailure:
return "short_lamp_failure";
case GatewayModbusGeneratedKind::kShortLampPowerOn:
return "short_lamp_power_on";
case GatewayModbusGeneratedKind::kShortLimitError:
return "short_limit_error";
case GatewayModbusGeneratedKind::kShortFadingCompleted:
return "short_fading_completed";
case GatewayModbusGeneratedKind::kShortResetState:
return "short_reset_state";
case GatewayModbusGeneratedKind::kShortMissingShortAddress:
return "short_missing_short_address";
case GatewayModbusGeneratedKind::kShortPowerSupplyFault:
return "short_power_supply_fault";
case GatewayModbusGeneratedKind::kShortBrightness:
return "short_brightness";
case GatewayModbusGeneratedKind::kShortColorTemperature:
return "short_color_temperature";
case GatewayModbusGeneratedKind::kShortGroupMask:
return "short_group_mask";
case GatewayModbusGeneratedKind::kShortPowerOnLevel:
return "short_power_on_level";
case GatewayModbusGeneratedKind::kShortSystemFailureLevel:
return "short_system_failure_level";
case GatewayModbusGeneratedKind::kShortMinLevel:
return "short_min_level";
case GatewayModbusGeneratedKind::kShortMaxLevel:
return "short_max_level";
case GatewayModbusGeneratedKind::kShortFadeTime:
return "short_fade_time";
case GatewayModbusGeneratedKind::kShortFadeRate:
return "short_fade_rate";
case GatewayModbusGeneratedKind::kShortInventoryState:
return "short_inventory_state";
case GatewayModbusGeneratedKind::kShortPrimaryType:
return "short_primary_type";
case GatewayModbusGeneratedKind::kShortTypeMask:
return "short_type_mask";
case GatewayModbusGeneratedKind::kShortActualLevel:
return "short_actual_level";
case GatewayModbusGeneratedKind::kShortSceneId:
return "short_scene_id";
case GatewayModbusGeneratedKind::kShortRawStatus:
return "short_raw_status";
case GatewayModbusGeneratedKind::kShortDiagnosticBit:
return "short_diagnostic_bit";
case GatewayModbusGeneratedKind::kNone:
default:
return "none";
}
}
int GatewayModbusHumanAddressFromWire(GatewayModbusSpace space, uint16_t zero_based_address) {
return baseForSpace(space) + static_cast<int>(zero_based_address);
}
std::optional<GatewayModbusSpace> GatewayModbusReadSpaceForFunction(uint8_t function_code) {
switch (function_code) {
case 0x01:
return GatewayModbusSpace::kCoil;
case 0x02:
return GatewayModbusSpace::kDiscreteInput;
case 0x03:
return GatewayModbusSpace::kHoldingRegister;
case 0x04:
return GatewayModbusSpace::kInputRegister;
default:
return std::nullopt;
}
}
std::optional<GatewayModbusSpace> GatewayModbusWriteSpaceForFunction(uint8_t function_code) {
switch (function_code) {
case 0x05:
case 0x0F:
return GatewayModbusSpace::kCoil;
case 0x06:
case 0x10:
return GatewayModbusSpace::kHoldingRegister;
default:
return std::nullopt;
}
}
GatewayModbusBridge::GatewayModbusBridge(DaliBridgeEngine& engine) : engine_(engine) {
rebuildMap();
}
void GatewayModbusBridge::setConfig(const GatewayModbusConfig& config) { config_ = config; }
const GatewayModbusConfig& GatewayModbusBridge::config() const { return config_; }
void GatewayModbusBridge::rebuildMap() {
auto models = engine_.listModels();
points_.clear();
points_.reserve(models.size());
for (const auto& model : models) {
if (model.protocol != BridgeProtocolKind::modbus || !model.external.registerAddress.has_value()) {
continue;
}
const auto space = spaceForObjectType(model.external.objectType);
if (!space.has_value()) {
continue;
}
GatewayModbusPoint point;
point.space = space.value();
point.access = accessForSpace(space.value());
point.address = static_cast<uint16_t>(model.external.registerAddress.value());
point.id = model.id;
point.name = model.displayName();
point.generated = false;
point.generated_kind = GatewayModbusGeneratedKind::kNone;
point.model_id = model.id;
point.operation = model.operation;
point.bit_index = model.external.bitIndex;
if (model.dali.kind == BridgeDaliTargetKind::shortAddress && model.dali.shortAddress.has_value()) {
point.short_address = model.dali.shortAddress.value();
}
points_.push_back(std::move(point));
}
std::stable_sort(points_.begin(), points_.end(), pointLess);
auto write = points_.begin();
for (auto read = points_.begin(); read != points_.end();) {
auto next = read + 1;
while (next != points_.end() && pointKeyEqual(*read, *next)) {
++next;
}
if (write != next - 1) {
*write = std::move(*(next - 1));
}
++write;
read = next;
}
points_.erase(write, points_.end());
}
std::optional<GatewayModbusPoint> GatewayModbusBridge::findPoint(GatewayModbusSpace space,
uint16_t address) const {
const PointKey key{space, address};
const auto found = findStoredPoint(points_, key);
if (found != points_.end()) {
return *found;
}
return generatedPointForAddress(space, address);
}
GatewayModbusPointBinding GatewayModbusBridge::describePoint(
const GatewayModbusPoint& point) const {
return toBinding(point);
}
void GatewayModbusBridge::appendGeneratedPointsForShortAddress(
uint8_t short_address, std::vector<GatewayModbusPoint>* points) const {
if (points == nullptr || short_address >= kShortAddressCount) {
return;
}
for (const auto& spec : kGeneratedCoils) {
appendIfNotOverridden(points_, points, makeGeneratedPoint(short_address, spec));
}
for (const auto& spec : kGeneratedDiscreteInputs) {
appendIfNotOverridden(points_, points, makeGeneratedPoint(short_address, spec));
}
for (const auto& spec : kGeneratedHoldingRegisters) {
appendIfNotOverridden(points_, points, makeGeneratedPoint(short_address, spec));
}
for (const auto& spec : kGeneratedInputRegisters) {
appendIfNotOverridden(points_, points, makeGeneratedPoint(short_address, spec));
}
for (const auto& spec : kGeneratedDiagnosticBits) {
appendIfNotOverridden(points_, points, makeGeneratedDiagnosticPoint(short_address, spec));
}
for (const auto& spec : kGeneratedDiagnosticBitsTail) {
appendIfNotOverridden(points_, points, makeGeneratedDiagnosticPoint(short_address, spec));
}
}
std::vector<GatewayModbusPointBinding> GatewayModbusBridge::describePoints() const {
std::vector<GatewayModbusPointBinding> bindings;
bindings.reserve(kGeneratedPointCount + points_.size());
std::vector<GatewayModbusPoint> generated_points;
generated_points.reserve(kGeneratedPointsPerShort);
for (uint8_t short_address = 0; short_address < kShortAddressCount; ++short_address) {
generated_points.clear();
appendGeneratedPointsForShortAddress(short_address, &generated_points);
for (const auto& point : generated_points) {
bindings.push_back(toBinding(point));
}
}
for (const auto& point : points_) {
bindings.push_back(toBinding(point));
}
std::sort(bindings.begin(), bindings.end(), [](const auto& lhs, const auto& rhs) {
if (lhs.space != rhs.space) {
return static_cast<uint8_t>(lhs.space) < static_cast<uint8_t>(rhs.space);
}
return lhs.address < rhs.address;
});
return bindings;
}
std::vector<GatewayModbusPointBinding> GatewayModbusBridge::describeHoldingRegisters() const {
std::vector<GatewayModbusPointBinding> bindings;
std::vector<GatewayModbusPoint> generated_points;
generated_points.reserve(kGeneratedPointsPerShort);
for (uint8_t short_address = 0; short_address < kShortAddressCount; ++short_address) {
generated_points.clear();
appendGeneratedPointsForShortAddress(short_address, &generated_points);
for (const auto& point : generated_points) {
if (point.space == GatewayModbusSpace::kHoldingRegister) {
bindings.push_back(toBinding(point));
}
}
}
for (const auto& point : points_) {
if (point.space == GatewayModbusSpace::kHoldingRegister) {
bindings.push_back(toBinding(point));
}
}
std::sort(bindings.begin(), bindings.end(), [](const auto& lhs, const auto& rhs) {
return lhs.address < rhs.address;
});
return bindings;
}
const std::vector<GatewayModbusPoint>& GatewayModbusBridge::points() const {
return points_;
}
DaliBridgeResult GatewayModbusBridge::readModelPoint(const GatewayModbusPoint& point) const {
return executeModelPoint(point, std::nullopt);
}
DaliBridgeResult GatewayModbusBridge::writeRegisterPoint(const GatewayModbusPoint& point,
uint16_t value) const {
return executeModelPoint(point, static_cast<int>(value));
}
DaliBridgeResult GatewayModbusBridge::writeCoilPoint(const GatewayModbusPoint& point,
bool value) const {
return executeModelPoint(point, value ? 1 : 0);
}
DaliBridgeResult GatewayModbusBridge::executeModelPoint(const GatewayModbusPoint& point,
std::optional<int> value) const {
DaliBridgeRequest request;
request.sequence = "modbus-" + std::to_string(point.address);
request.modelID = point.model_id;
if (value.has_value()) {
request.value = value.value();
}
if (point.model_id.empty()) {
DaliBridgeResult result;
result.sequence = request.sequence;
result.error = "generated Modbus point requires gateway handler";
return result;
}
return engine_.execute(request);
}
} // namespace gateway
+1 -1
View File
@@ -1,7 +1,7 @@
idf_component_register(
SRCS "src/gateway_network.cpp"
INCLUDE_DIRS "include"
REQUIRES dali_domain esp_event esp_http_server esp_netif esp_wifi freertos gateway_bridge gateway_controller gateway_runtime log lwip espressif__cjson
REQUIRES dali_domain esp_driver_gpio esp_driver_spi esp_eth esp_event esp_http_server esp_hw_support esp_netif esp_wifi freertos gateway_bridge gateway_controller gateway_runtime log lwip espressif__cjson
)
set_property(TARGET ${COMPONENT_LIB} PROPERTY CXX_STANDARD 17)
@@ -8,6 +8,10 @@
#include "esp_err.h"
#include "esp_event.h"
#include "esp_eth.h"
#include "esp_eth_mac.h"
#include "esp_eth_netif_glue.h"
#include "esp_eth_phy.h"
#include "esp_http_server.h"
#include "esp_netif.h"
#include "esp_now.h"
@@ -26,6 +30,8 @@ struct DaliRawFrame;
struct GatewayNetworkServiceConfig {
bool wifi_enabled{true};
bool ethernet_enabled{false};
bool ethernet_ignore_init_failure{false};
bool espnow_setup_enabled{true};
bool espnow_setup_startup_enabled{false};
bool smartconfig_enabled{true};
@@ -35,6 +41,17 @@ struct GatewayNetworkServiceConfig {
bool udp_enabled{true};
uint16_t http_port{80};
uint16_t udp_port{2020};
int ethernet_spi_host{1};
int ethernet_spi_sclk_gpio{14};
int ethernet_spi_mosi_gpio{13};
int ethernet_spi_miso_gpio{12};
int ethernet_spi_cs_gpio{15};
int ethernet_spi_int_gpio{4};
uint32_t ethernet_poll_period_ms{0};
uint8_t ethernet_spi_clock_mhz{36};
int ethernet_phy_reset_gpio{5};
int ethernet_phy_addr{1};
uint32_t ethernet_rx_task_stack_size{3072};
int status_led_gpio{-1};
bool status_led_active_high{true};
int boot_button_gpio{-1};
@@ -66,12 +83,17 @@ class GatewayNetworkService {
static esp_err_t HandleLedOnGet(httpd_req_t* req);
static esp_err_t HandleLedOffGet(httpd_req_t* req);
static esp_err_t HandleJqJsGet(httpd_req_t* req);
static void HandleEthernetEvent(void* arg, esp_event_base_t event_base, int32_t event_id,
void* event_data);
static void HandleWifiEvent(void* arg, esp_event_base_t event_base, int32_t event_id,
void* event_data);
static void HandleEspNowReceive(const esp_now_recv_info_t* info, const uint8_t* data,
int data_len);
esp_err_t ensureNetworkStack();
esp_err_t startEthernet();
esp_err_t probeEthernetStartup();
void stopEthernet();
esp_err_t startWifi();
esp_err_t startSetupAp();
esp_err_t startSmartconfig();
@@ -89,6 +111,7 @@ class GatewayNetworkService {
void bootButtonTaskLoop();
void handleGatewayNotification(const std::vector<uint8_t>& frame);
void handleWifiControl(uint8_t mode);
void handleEthernetEvent(esp_event_base_t event_base, int32_t event_id, void* event_data);
void handleWifiEvent(esp_event_base_t event_base, int32_t event_id, void* event_data);
void handleEspNowReceive(const esp_now_recv_info_t* info, const uint8_t* data, int data_len);
void handleSetupUartFrame(int setup_id, const std::vector<uint8_t>& frame);
@@ -106,8 +129,15 @@ class GatewayNetworkService {
GatewayBridgeService* bridge_service_{nullptr};
bool started_{false};
httpd_handle_t http_server_{nullptr};
esp_netif_t* eth_netif_{nullptr};
esp_netif_t* wifi_sta_netif_{nullptr};
esp_netif_t* wifi_ap_netif_{nullptr};
esp_eth_handle_t eth_handle_{nullptr};
esp_eth_mac_t* eth_mac_{nullptr};
esp_eth_phy_t* eth_phy_{nullptr};
esp_eth_netif_glue_handle_t eth_glue_{nullptr};
bool ethernet_started_{false};
bool ethernet_event_handlers_registered_{false};
bool wifi_started_{false};
bool wifi_event_handlers_registered_{false};
bool setup_ap_started_{false};
@@ -7,8 +7,12 @@
#include "cJSON.h"
#include "driver/gpio.h"
#include "driver/spi_master.h"
#include "esp_event.h"
#include "esp_eth_driver.h"
#include "esp_eth_mac_spi.h"
#include "esp_log.h"
#include "esp_mac.h"
#include "esp_netif.h"
#include "esp_netif_ip_addr.h"
#include "esp_smartconfig.h"
@@ -268,6 +272,19 @@ esp_err_t GatewayNetworkService::start() {
return err;
}
if (config_.ethernet_enabled) {
err = startEthernet();
if (err != ESP_OK) {
if (config_.ethernet_ignore_init_failure) {
ESP_LOGW(kTag, "Ethernet init failed; Ethernet is disabled for this boot: %s",
esp_err_to_name(err));
config_.ethernet_enabled = false;
} else {
return err;
}
}
}
if (config_.espnow_setup_startup_enabled) {
err = startSetupAp();
if (err != ESP_OK) {
@@ -320,7 +337,8 @@ esp_err_t GatewayNetworkService::start() {
}
started_ = true;
ESP_LOGI(kTag, "network service started http=%d udp=%d", config_.http_enabled,
ESP_LOGI(kTag, "network service started eth=%d wifi=%d http=%d udp=%d",
config_.ethernet_enabled, config_.wifi_enabled, config_.http_enabled,
config_.udp_enabled);
return ESP_OK;
}
@@ -341,6 +359,234 @@ esp_err_t GatewayNetworkService::ensureNetworkStack() {
return ESP_OK;
}
esp_err_t GatewayNetworkService::startEthernet() {
if (ethernet_started_) {
return ESP_OK;
}
#if CONFIG_ETH_SPI_ETHERNET_W5500
if (eth_netif_ == nullptr) {
esp_netif_config_t netif_config = ESP_NETIF_DEFAULT_ETH();
eth_netif_ = esp_netif_new(&netif_config);
if (eth_netif_ == nullptr) {
ESP_LOGE(kTag, "failed to create Ethernet netif");
return ESP_ERR_NO_MEM;
}
}
if (!ethernet_event_handlers_registered_) {
esp_err_t err = esp_event_handler_register(ETH_EVENT, ESP_EVENT_ANY_ID,
&GatewayNetworkService::HandleEthernetEvent, this);
if (err != ESP_OK && err != ESP_ERR_INVALID_STATE) {
ESP_LOGE(kTag, "failed to register Ethernet event handler: %s", esp_err_to_name(err));
stopEthernet();
return err;
}
err = esp_event_handler_register(IP_EVENT, IP_EVENT_ETH_GOT_IP,
&GatewayNetworkService::HandleEthernetEvent, this);
if (err != ESP_OK && err != ESP_ERR_INVALID_STATE) {
ESP_LOGE(kTag, "failed to register Ethernet IP event handler: %s", esp_err_to_name(err));
ESP_ERROR_CHECK_WITHOUT_ABORT(esp_event_handler_unregister(
ETH_EVENT, ESP_EVENT_ANY_ID, &GatewayNetworkService::HandleEthernetEvent));
stopEthernet();
return err;
}
ethernet_event_handlers_registered_ = true;
}
if (config_.ethernet_spi_int_gpio >= 0) {
esp_err_t err = gpio_install_isr_service(0);
if (err != ESP_OK && err != ESP_ERR_INVALID_STATE) {
ESP_LOGE(kTag, "failed to install GPIO ISR service for Ethernet: %s", esp_err_to_name(err));
stopEthernet();
return err;
}
}
const auto spi_host = static_cast<spi_host_device_t>(config_.ethernet_spi_host);
spi_bus_config_t bus_config = {};
bus_config.miso_io_num = config_.ethernet_spi_miso_gpio;
bus_config.mosi_io_num = config_.ethernet_spi_mosi_gpio;
bus_config.sclk_io_num = config_.ethernet_spi_sclk_gpio;
bus_config.quadwp_io_num = -1;
bus_config.quadhd_io_num = -1;
esp_err_t err = spi_bus_initialize(spi_host, &bus_config, SPI_DMA_CH_AUTO);
if (err != ESP_OK && err != ESP_ERR_INVALID_STATE) {
ESP_LOGE(kTag, "failed to initialize Ethernet SPI host %d: %s", config_.ethernet_spi_host,
esp_err_to_name(err));
stopEthernet();
return err;
}
spi_device_interface_config_t spi_device_config = {};
spi_device_config.mode = 0;
spi_device_config.clock_speed_hz = static_cast<int>(config_.ethernet_spi_clock_mhz) * 1000 * 1000;
spi_device_config.spics_io_num = config_.ethernet_spi_cs_gpio;
spi_device_config.queue_size = 20;
eth_mac_config_t mac_config = ETH_MAC_DEFAULT_CONFIG();
mac_config.rx_task_stack_size = config_.ethernet_rx_task_stack_size;
eth_phy_config_t phy_config = ETH_PHY_DEFAULT_CONFIG();
phy_config.phy_addr = config_.ethernet_phy_addr;
phy_config.reset_gpio_num = config_.ethernet_phy_reset_gpio;
eth_w5500_config_t w5500_config = ETH_W5500_DEFAULT_CONFIG(spi_host, &spi_device_config);
w5500_config.int_gpio_num = config_.ethernet_spi_int_gpio;
w5500_config.poll_period_ms = config_.ethernet_poll_period_ms;
if (w5500_config.int_gpio_num < 0 && w5500_config.poll_period_ms == 0) {
w5500_config.poll_period_ms = 100;
}
eth_mac_ = esp_eth_mac_new_w5500(&w5500_config, &mac_config);
if (eth_mac_ == nullptr) {
ESP_LOGE(kTag, "failed to create W5500 Ethernet MAC");
stopEthernet();
return ESP_ERR_NO_MEM;
}
eth_phy_ = esp_eth_phy_new_w5500(&phy_config);
if (eth_phy_ == nullptr) {
ESP_LOGE(kTag, "failed to create W5500 Ethernet PHY");
stopEthernet();
return ESP_ERR_NO_MEM;
}
esp_eth_config_t eth_config = ETH_DEFAULT_CONFIG(eth_mac_, eth_phy_);
err = esp_eth_driver_install(&eth_config, &eth_handle_);
if (err != ESP_OK) {
ESP_LOGE(kTag, "failed to install Ethernet driver: %s", esp_err_to_name(err));
stopEthernet();
return err;
}
uint8_t eth_mac[6] = {};
err = esp_read_mac(eth_mac, ESP_MAC_ETH);
if (err == ESP_OK) {
err = esp_eth_ioctl(eth_handle_, ETH_CMD_S_MAC_ADDR, eth_mac);
if (err != ESP_OK) {
ESP_LOGE(kTag, "failed to set Ethernet MAC address: %s", esp_err_to_name(err));
stopEthernet();
return err;
}
EthernetInfo info;
info.mac = MacToHex(eth_mac);
runtime_.setEthernetInfo(std::move(info));
} else {
ESP_LOGW(kTag, "failed to read Ethernet MAC address: %s", esp_err_to_name(err));
}
eth_glue_ = esp_eth_new_netif_glue(eth_handle_);
if (eth_glue_ == nullptr) {
ESP_LOGE(kTag, "failed to create Ethernet netif glue");
stopEthernet();
return ESP_ERR_NO_MEM;
}
err = esp_netif_attach(eth_netif_, eth_glue_);
if (err != ESP_OK) {
ESP_LOGE(kTag, "failed to attach Ethernet netif: %s", esp_err_to_name(err));
stopEthernet();
return err;
}
err = esp_eth_start(eth_handle_);
if (err != ESP_OK) {
ESP_LOGE(kTag, "failed to start Ethernet: %s", esp_err_to_name(err));
stopEthernet();
return err;
}
ethernet_started_ = true;
err = probeEthernetStartup();
if (err != ESP_OK) {
ESP_LOGE(kTag, "Ethernet startup probe failed: %s", esp_err_to_name(err));
stopEthernet();
return err;
}
ESP_LOGI(kTag,
"Ethernet W5500 started spi_host=%d sclk=%d mosi=%d miso=%d cs=%d int=%d reset=%d",
config_.ethernet_spi_host, config_.ethernet_spi_sclk_gpio,
config_.ethernet_spi_mosi_gpio, config_.ethernet_spi_miso_gpio,
config_.ethernet_spi_cs_gpio, config_.ethernet_spi_int_gpio,
config_.ethernet_phy_reset_gpio);
return ESP_OK;
#else
ESP_LOGW(kTag, "Ethernet requested but W5500 support is not enabled in esp-eth");
return ESP_ERR_NOT_SUPPORTED;
#endif
}
esp_err_t GatewayNetworkService::probeEthernetStartup() {
if (eth_handle_ == nullptr || !ethernet_started_) {
return ESP_ERR_INVALID_STATE;
}
esp_err_t err = esp_eth_stop(eth_handle_);
ethernet_started_ = false;
if (err != ESP_OK) {
return err;
}
err = esp_eth_start(eth_handle_);
if (err == ESP_OK) {
ethernet_started_ = true;
}
return err;
}
void GatewayNetworkService::stopEthernet() {
if (ethernet_event_handlers_registered_) {
ESP_ERROR_CHECK_WITHOUT_ABORT(esp_event_handler_unregister(
IP_EVENT, IP_EVENT_ETH_GOT_IP, &GatewayNetworkService::HandleEthernetEvent));
ESP_ERROR_CHECK_WITHOUT_ABORT(esp_event_handler_unregister(
ETH_EVENT, ESP_EVENT_ANY_ID, &GatewayNetworkService::HandleEthernetEvent));
ethernet_event_handlers_registered_ = false;
}
if (eth_handle_ != nullptr) {
const esp_err_t stop_err = esp_eth_stop(eth_handle_);
if (stop_err != ESP_OK && stop_err != ESP_ERR_INVALID_STATE) {
ESP_LOGW(kTag, "failed to stop Ethernet during disable: %s", esp_err_to_name(stop_err));
}
ethernet_started_ = false;
}
if (eth_glue_ != nullptr) {
const esp_err_t glue_err = esp_eth_del_netif_glue(eth_glue_);
if (glue_err != ESP_OK) {
ESP_LOGW(kTag, "failed to delete Ethernet netif glue: %s", esp_err_to_name(glue_err));
} else {
eth_glue_ = nullptr;
}
}
if (eth_handle_ != nullptr) {
const esp_err_t uninstall_err = esp_eth_driver_uninstall(eth_handle_);
if (uninstall_err != ESP_OK) {
ESP_LOGW(kTag, "failed to uninstall Ethernet driver: %s", esp_err_to_name(uninstall_err));
} else {
eth_handle_ = nullptr;
}
}
if (eth_phy_ != nullptr && eth_handle_ == nullptr) {
ESP_ERROR_CHECK_WITHOUT_ABORT(eth_phy_->del(eth_phy_));
eth_phy_ = nullptr;
}
if (eth_mac_ != nullptr && eth_handle_ == nullptr) {
ESP_ERROR_CHECK_WITHOUT_ABORT(eth_mac_->del(eth_mac_));
eth_mac_ = nullptr;
}
if (eth_netif_ != nullptr && eth_glue_ == nullptr) {
esp_netif_destroy(eth_netif_);
eth_netif_ = nullptr;
}
runtime_.clearEthernetInfo();
}
esp_err_t GatewayNetworkService::startWifi() {
if (wifi_started_) {
return ESP_OK;
@@ -778,6 +1024,69 @@ void GatewayNetworkService::HandleEspNowReceive(const esp_now_recv_info_t* info,
}
}
void GatewayNetworkService::HandleEthernetEvent(void* arg, esp_event_base_t event_base,
int32_t event_id, void* event_data) {
auto* service = static_cast<GatewayNetworkService*>(arg);
if (service != nullptr) {
service->handleEthernetEvent(event_base, event_id, event_data);
}
}
void GatewayNetworkService::handleEthernetEvent(esp_event_base_t event_base, int32_t event_id,
void* event_data) {
if (event_base == ETH_EVENT) {
esp_eth_handle_t handle = eth_handle_;
if (event_data != nullptr) {
handle = *static_cast<esp_eth_handle_t*>(event_data);
}
if (event_id == ETHERNET_EVENT_CONNECTED) {
uint8_t mac[6] = {};
if (handle != nullptr && esp_eth_ioctl(handle, ETH_CMD_G_MAC_ADDR, mac) == ESP_OK) {
const std::string mac_hex = MacToHex(mac);
EthernetInfo info = runtime_.deviceInfo().eth.value_or(EthernetInfo{});
info.mac = mac_hex;
runtime_.setEthernetInfo(std::move(info));
ESP_LOGI(kTag, "Ethernet link up mac=%s", mac_hex.c_str());
} else {
ESP_LOGI(kTag, "Ethernet link up");
}
return;
}
if (event_id == ETHERNET_EVENT_DISCONNECTED) {
runtime_.clearEthernetIp();
ESP_LOGI(kTag, "Ethernet link down");
return;
}
if (event_id == ETHERNET_EVENT_START) {
ESP_LOGI(kTag, "Ethernet driver started");
return;
}
if (event_id == ETHERNET_EVENT_STOP) {
runtime_.clearEthernetIp();
ESP_LOGI(kTag, "Ethernet driver stopped");
}
return;
}
if (event_base == IP_EVENT && event_id == IP_EVENT_ETH_GOT_IP && event_data != nullptr) {
auto* event = static_cast<ip_event_got_ip_t*>(event_data);
char ip[16] = {0};
esp_ip4addr_ntoa(&event->ip_info.ip, ip, sizeof(ip));
EthernetInfo info = runtime_.deviceInfo().eth.value_or(EthernetInfo{});
uint8_t mac[6] = {};
if (eth_handle_ != nullptr && esp_eth_ioctl(eth_handle_, ETH_CMD_G_MAC_ADDR, mac) == ESP_OK) {
info.mac = MacToHex(mac);
}
info.ip = ip;
runtime_.setEthernetInfo(std::move(info));
ESP_LOGI(kTag, "Ethernet got IP %s", ip);
}
}
void GatewayNetworkService::handleWifiEvent(esp_event_base_t event_base, int32_t event_id,
void* event_data) {
if (!config_.wifi_enabled) {
@@ -1168,6 +1477,15 @@ std::string GatewayNetworkService::deviceInfoJson() const {
}
}
if (info.eth.has_value()) {
cJSON* eth = cJSON_CreateObject();
if (eth != nullptr) {
cJSON_AddStringToObject(eth, "mac", info.eth->mac.c_str());
cJSON_AddStringToObject(eth, "IP", info.eth->ip.c_str());
cJSON_AddItemToObject(root, "ethInfo", eth);
}
}
const std::string rendered = PrintJson(root);
cJSON_Delete(root);
return rendered;
@@ -30,6 +30,11 @@ struct WirelessInfo {
std::string ip;
};
struct EthernetInfo {
std::string mac;
std::string ip;
};
struct GatewayRuntimeConfig {
std::string_view project_name;
std::string_view version;
@@ -47,6 +52,7 @@ struct GatewayDeviceInfo {
size_t dali_gateway_count{0};
bool ble_enabled{false};
std::optional<WirelessInfo> wlan;
std::optional<EthernetInfo> eth;
};
class GatewaySettingsStore {
@@ -119,6 +125,9 @@ class GatewayRuntime {
void setGatewayCount(size_t gateway_count);
void setWirelessInfo(WirelessInfo info);
bool clearWirelessInfo();
void setEthernetInfo(EthernetInfo info);
void clearEthernetInfo();
void clearEthernetIp();
void setCommandAddressResolver(std::function<uint8_t(uint8_t gw, uint8_t raw_addr)> resolver);
GatewayDeviceInfo deviceInfo() const;
@@ -159,6 +168,7 @@ class GatewayRuntime {
CommandDropReason last_enqueue_drop_reason_{CommandDropReason::kNone};
std::function<uint8_t(uint8_t gw, uint8_t raw_addr)> command_address_resolver_;
std::optional<WirelessInfo> wireless_info_;
std::optional<EthernetInfo> ethernet_info_;
SemaphoreHandle_t command_lock_{nullptr};
};
@@ -450,6 +450,23 @@ bool GatewayRuntime::clearWirelessInfo() {
return settings_.clearWifiCredentials();
}
void GatewayRuntime::setEthernetInfo(EthernetInfo info) {
LockGuard guard(command_lock_);
ethernet_info_ = std::move(info);
}
void GatewayRuntime::clearEthernetInfo() {
LockGuard guard(command_lock_);
ethernet_info_.reset();
}
void GatewayRuntime::clearEthernetIp() {
LockGuard guard(command_lock_);
if (ethernet_info_.has_value()) {
ethernet_info_->ip.clear();
}
}
void GatewayRuntime::setCommandAddressResolver(
std::function<uint8_t(uint8_t gw, uint8_t raw_addr)> resolver) {
LockGuard guard(command_lock_);
@@ -470,6 +487,7 @@ GatewayDeviceInfo GatewayRuntime::deviceInfo() const {
info.dali_gateway_count = gateway_count_;
info.ble_enabled = ble_enabled_;
info.wlan = wireless_info_;
info.eth = ethernet_info_;
return info;
}
+65
View File
@@ -0,0 +1,65 @@
set(OPENKNX_ROOT "${CMAKE_CURRENT_LIST_DIR}/../../knx")
set(TPUART_ROOT "${CMAKE_CURRENT_LIST_DIR}/../../tpuart")
if(NOT EXISTS "${OPENKNX_ROOT}/src/knx/platform.h")
message(FATAL_ERROR "OpenKNX submodule is missing at ${OPENKNX_ROOT}")
endif()
if(NOT EXISTS "${TPUART_ROOT}/src/TPUart/DataLinkLayer.h")
message(FATAL_ERROR "TPUart submodule is missing at ${TPUART_ROOT}")
endif()
file(GLOB OPENKNX_SRCS
"${OPENKNX_ROOT}/src/knx/*.cpp"
)
set(TPUART_SRCS
"${TPUART_ROOT}/src/TPUart/DataLinkLayer.cpp"
"${TPUART_ROOT}/src/TPUart/Receiver.cpp"
"${TPUART_ROOT}/src/TPUart/RepetitionFilter.cpp"
"${TPUART_ROOT}/src/TPUart/RingBuffer.cpp"
"${TPUART_ROOT}/src/TPUart/SearchBuffer.cpp"
"${TPUART_ROOT}/src/TPUart/Statistics.cpp"
"${TPUART_ROOT}/src/TPUart/SystemState.cpp"
"${TPUART_ROOT}/src/TPUart/Transmitter.cpp"
"${TPUART_ROOT}/src/TPUart.cpp"
)
idf_component_register(
SRCS
"src/arduino_compat.cpp"
"src/esp_idf_platform.cpp"
"src/ets_device_runtime.cpp"
"src/ets_memory_loader.cpp"
"src/tpuart_uart_interface.cpp"
${OPENKNX_SRCS}
${TPUART_SRCS}
INCLUDE_DIRS
"include"
"${OPENKNX_ROOT}/src"
"${TPUART_ROOT}/src"
REQUIRES
esp_driver_gpio
esp_driver_uart
esp_netif
esp_timer
esp_wifi
freertos
log
lwip
nvs_flash
)
target_compile_definitions(${COMPONENT_LIB} PUBLIC
MASK_VERSION=0x07B0
KNX_FLASH_SIZE=4096
KNX_NO_AUTOMATIC_GLOBAL_INSTANCE
KNX_NO_SPI
USE_CEMI_SERVER
)
target_compile_options(${COMPONENT_LIB} PRIVATE
-Wno-unused-parameter
)
set_property(TARGET ${COMPONENT_LIB} PROPERTY CXX_STANDARD 17)
+59
View File
@@ -0,0 +1,59 @@
#pragma once
#include <stdint.h>
#ifndef DEC
#define DEC 10
#endif
#ifndef HEX
#define HEX 16
#endif
#ifndef INPUT
#define INPUT 0x0
#endif
#ifndef OUTPUT
#define OUTPUT 0x1
#endif
#ifndef INPUT_PULLUP
#define INPUT_PULLUP 0x2
#endif
#ifndef INPUT_PULLDOWN
#define INPUT_PULLDOWN 0x3
#endif
#ifndef LOW
#define LOW 0x0
#endif
#ifndef HIGH
#define HIGH 0x1
#endif
#ifndef CHANGE
#define CHANGE 2
#endif
#ifndef FALLING
#define FALLING 3
#endif
#ifndef RISING
#define RISING 4
#endif
using uint = unsigned int;
uint32_t millis();
uint32_t micros();
void delay(uint32_t millis);
void delayMicroseconds(unsigned int howLong);
void pinMode(uint32_t pin, uint32_t mode);
void digitalWrite(uint32_t pin, uint32_t value);
uint32_t digitalRead(uint32_t pin);
typedef void (*voidFuncPtr)(void);
void attachInterrupt(uint32_t pin, voidFuncPtr callback, uint32_t mode);
@@ -0,0 +1,59 @@
#pragma once
#include "knx/platform.h"
#include "esp_netif.h"
#include "lwip/sockets.h"
#include <cstddef>
#include <cstdint>
#include <string>
#include <vector>
namespace gateway::openknx {
class EspIdfPlatform : public Platform {
public:
explicit EspIdfPlatform(TPUart::Interface::Abstract* interface = nullptr,
const char* nvs_namespace = "openknx");
~EspIdfPlatform() override;
void networkInterface(esp_netif_t* netif);
esp_netif_t* networkInterface() const;
uint32_t currentIpAddress() override;
uint32_t currentSubnetMask() override;
uint32_t currentDefaultGateway() override;
void macAddress(uint8_t* data) override;
uint32_t uniqueSerialNumber() override;
void restart() override;
void fatalError() override;
void setupMultiCast(uint32_t addr, uint16_t port) override;
void closeMultiCast() override;
bool sendBytesMultiCast(uint8_t* buffer, uint16_t len) override;
int readBytesMultiCast(uint8_t* buffer, uint16_t maxLen) override;
int readBytesMultiCast(uint8_t* buffer, uint16_t maxLen, uint32_t& src_addr,
uint16_t& src_port) override;
bool sendBytesUniCast(uint32_t addr, uint16_t port, uint8_t* buffer,
uint16_t len) override;
uint8_t* getEepromBuffer(uint32_t size) override;
void commitToEeprom() override;
private:
esp_netif_t* effectiveNetif() const;
void loadEeprom(size_t size);
esp_netif_t* netif_{nullptr};
int udp_sock_{-1};
sockaddr_in multicast_remote_{};
sockaddr_in last_remote_{};
bool has_last_remote_{false};
std::vector<uint8_t> eeprom_;
std::string nvs_namespace_;
bool eeprom_loaded_{false};
};
} // namespace gateway::openknx
@@ -0,0 +1,60 @@
#pragma once
#include "openknx_idf/esp_idf_platform.h"
#include "openknx_idf/ets_memory_loader.h"
#include "knx/bau07B0.h"
#include "knx/cemi_frame.h"
#include <cstddef>
#include <cstdint>
#include <functional>
#include <string>
#include <vector>
namespace gateway::openknx {
class EtsDeviceRuntime {
public:
using CemiFrameSender = std::function<void(const uint8_t* data, size_t len)>;
using FunctionPropertyHandler = std::function<bool(uint8_t object_index, uint8_t property_id,
const uint8_t* data, size_t len,
std::vector<uint8_t>* response)>;
EtsDeviceRuntime(std::string nvs_namespace, uint16_t fallback_individual_address);
~EtsDeviceRuntime();
uint16_t individualAddress() const;
uint16_t tunnelClientAddress() const;
bool configured() const;
EtsMemorySnapshot snapshot() const;
void setFunctionPropertyHandlers(FunctionPropertyHandler command_handler,
FunctionPropertyHandler state_handler);
bool handleTunnelFrame(const uint8_t* data, size_t len, CemiFrameSender sender);
void loop();
private:
static void EmitTunnelFrame(CemiFrame& frame, void* context);
static bool HandleFunctionPropertyCommand(uint8_t object_index, uint8_t property_id,
uint8_t length, uint8_t* data,
uint8_t* result_data, uint8_t& result_length);
static bool HandleFunctionPropertyState(uint8_t object_index, uint8_t property_id,
uint8_t length, uint8_t* data,
uint8_t* result_data, uint8_t& result_length);
static uint16_t DefaultTunnelClientAddress(uint16_t individual_address);
static bool DispatchFunctionProperty(FunctionPropertyHandler* handler, uint8_t object_index,
uint8_t property_id, uint8_t length, uint8_t* data,
uint8_t* result_data, uint8_t& result_length);
bool shouldConsumeTunnelFrame(CemiFrame& frame) const;
std::string nvs_namespace_;
EspIdfPlatform platform_;
Bau07B0 device_;
CemiFrameSender sender_;
FunctionPropertyHandler command_handler_;
FunctionPropertyHandler state_handler_;
};
} // namespace gateway::openknx
@@ -0,0 +1,22 @@
#pragma once
#include <cstdint>
#include <string>
#include <vector>
namespace gateway::openknx {
struct EtsAssociation {
uint16_t group_address{0};
uint16_t group_object_number{0};
};
struct EtsMemorySnapshot {
bool configured{false};
uint16_t individual_address{0};
std::vector<EtsAssociation> associations;
};
EtsMemorySnapshot LoadEtsMemorySnapshot(const std::string& nvs_namespace);
} // namespace gateway::openknx
@@ -0,0 +1,15 @@
#pragma once
#include "openknx_idf/ets_memory_loader.h"
#include "openknx_idf/ets_device_runtime.h"
#include "openknx_idf/esp_idf_platform.h"
#include "openknx_idf/tpuart_uart_interface.h"
#include "knx/bau07B0.h"
#include "knx_facade.h"
namespace gateway::openknx {
using DaliGatewayDevice = KnxFacade<EspIdfPlatform, Bau07B0>;
} // namespace gateway::openknx
@@ -0,0 +1,41 @@
#pragma once
#include "TPUart/Interface/Abstract.h"
#include "driver/uart.h"
#include <atomic>
#include <cstddef>
#include <cstdint>
#include <functional>
namespace gateway::openknx {
class TpuartUartInterface : public TPUart::Interface::Abstract {
public:
TpuartUartInterface(uart_port_t uart_port, int tx_pin, int rx_pin,
size_t rx_buffer_size = 512, size_t tx_buffer_size = 512);
~TpuartUartInterface();
void begin(int baud) override;
void end() override;
bool available() override;
bool availableForWrite() override;
bool write(char value) override;
int read() override;
bool overflow() override;
void flush() override;
bool hasCallback() override;
void registerCallback(std::function<bool()> callback) override;
private:
uart_port_t uart_port_;
int tx_pin_;
int rx_pin_;
size_t rx_buffer_size_;
size_t tx_buffer_size_;
std::atomic_bool overflow_{false};
std::function<bool()> callback_;
};
} // namespace gateway::openknx
@@ -0,0 +1,180 @@
#include "Arduino.h"
#include "driver/gpio.h"
#include "esp_err.h"
#include "esp_rom_sys.h"
#include "esp_timer.h"
#include "freertos/FreeRTOS.h"
#include "freertos/task.h"
#include <array>
#include <cstdio>
namespace {
std::array<voidFuncPtr, GPIO_NUM_MAX> g_gpio_callbacks{};
bool g_isr_service_installed = false;
void IRAM_ATTR gpioIsrThunk(void* arg) {
const auto pin = static_cast<uint32_t>(reinterpret_cast<uintptr_t>(arg));
if (pin < g_gpio_callbacks.size() && g_gpio_callbacks[pin] != nullptr) {
g_gpio_callbacks[pin]();
}
}
gpio_int_type_t toGpioInterrupt(uint32_t mode) {
switch (mode) {
case RISING:
return GPIO_INTR_POSEDGE;
case FALLING:
return GPIO_INTR_NEGEDGE;
case CHANGE:
return GPIO_INTR_ANYEDGE;
default:
return GPIO_INTR_DISABLE;
}
}
void printUnsigned(unsigned long long value, int base) {
if (base == HEX) {
std::printf("%llX", value);
} else {
std::printf("%llu", value);
}
}
void printSigned(long long value, int base) {
if (base == HEX) {
std::printf("%llX", static_cast<unsigned long long>(value));
} else {
std::printf("%lld", value);
}
}
} // namespace
uint32_t millis() { return static_cast<uint32_t>(esp_timer_get_time() / 1000ULL); }
uint32_t micros() { return static_cast<uint32_t>(esp_timer_get_time()); }
void delay(uint32_t millis) { vTaskDelay(pdMS_TO_TICKS(millis)); }
void delayMicroseconds(unsigned int howLong) { esp_rom_delay_us(howLong); }
void pinMode(uint32_t pin, uint32_t mode) {
if (pin >= GPIO_NUM_MAX) {
return;
}
gpio_config_t config{};
config.pin_bit_mask = 1ULL << pin;
config.mode = mode == OUTPUT ? GPIO_MODE_OUTPUT : GPIO_MODE_INPUT;
config.pull_up_en = mode == INPUT_PULLUP ? GPIO_PULLUP_ENABLE : GPIO_PULLUP_DISABLE;
config.pull_down_en = mode == INPUT_PULLDOWN ? GPIO_PULLDOWN_ENABLE : GPIO_PULLDOWN_DISABLE;
config.intr_type = GPIO_INTR_DISABLE;
gpio_config(&config);
}
void digitalWrite(uint32_t pin, uint32_t value) {
if (pin < GPIO_NUM_MAX) {
gpio_set_level(static_cast<gpio_num_t>(pin), value == LOW ? 0 : 1);
}
}
uint32_t digitalRead(uint32_t pin) {
if (pin >= GPIO_NUM_MAX) {
return LOW;
}
return gpio_get_level(static_cast<gpio_num_t>(pin)) == 0 ? LOW : HIGH;
}
void attachInterrupt(uint32_t pin, voidFuncPtr callback, uint32_t mode) {
if (pin >= GPIO_NUM_MAX) {
return;
}
if (!g_isr_service_installed) {
const esp_err_t err = gpio_install_isr_service(ESP_INTR_FLAG_IRAM);
g_isr_service_installed = err == ESP_OK || err == ESP_ERR_INVALID_STATE;
}
if (!g_isr_service_installed) {
return;
}
gpio_set_intr_type(static_cast<gpio_num_t>(pin), toGpioInterrupt(mode));
gpio_isr_handler_remove(static_cast<gpio_num_t>(pin));
g_gpio_callbacks[pin] = callback;
if (callback != nullptr) {
gpio_isr_handler_add(static_cast<gpio_num_t>(pin), gpioIsrThunk,
reinterpret_cast<void*>(static_cast<uintptr_t>(pin)));
}
}
void print(const char value[]) { std::printf("%s", value == nullptr ? "" : value); }
void print(char value) { std::printf("%c", value); }
void print(unsigned char value, int base) { printUnsigned(value, base); }
void print(int value, int base) { printSigned(value, base); }
void print(unsigned int value, int base) { printUnsigned(value, base); }
void print(long value, int base) { printSigned(value, base); }
void print(unsigned long value, int base) { printUnsigned(value, base); }
void print(long long value, int base) { printSigned(value, base); }
void print(unsigned long long value, int base) { printUnsigned(value, base); }
void print(double value) { std::printf("%f", value); }
void println(const char value[]) {
print(value);
std::printf("\n");
}
void println(char value) {
print(value);
std::printf("\n");
}
void println(unsigned char value, int base) {
print(value, base);
std::printf("\n");
}
void println(int value, int base) {
print(value, base);
std::printf("\n");
}
void println(unsigned int value, int base) {
print(value, base);
std::printf("\n");
}
void println(long value, int base) {
print(value, base);
std::printf("\n");
}
void println(unsigned long value, int base) {
print(value, base);
std::printf("\n");
}
void println(long long value, int base) {
print(value, base);
std::printf("\n");
}
void println(unsigned long long value, int base) {
print(value, base);
std::printf("\n");
}
void println(double value) {
print(value);
std::printf("\n");
}
void println(void) { std::printf("\n"); }
@@ -0,0 +1,273 @@
#include "openknx_idf/esp_idf_platform.h"
#include "esp_log.h"
#include "esp_mac.h"
#include "esp_system.h"
#include "freertos/FreeRTOS.h"
#include "freertos/task.h"
#include "lwip/inet.h"
#include "nvs.h"
#include "nvs_flash.h"
#include <algorithm>
#include <cerrno>
#include <cstring>
#include <unistd.h>
namespace gateway::openknx {
namespace {
constexpr const char* kTag = "openknx_idf";
constexpr const char* kEepromKey = "eeprom";
esp_netif_t* findDefaultNetif() {
if (auto* sta = esp_netif_get_handle_from_ifkey("WIFI_STA_DEF")) {
return sta;
}
if (auto* eth = esp_netif_get_handle_from_ifkey("ETH_DEF")) {
return eth;
}
return nullptr;
}
bool ensureNvsReady() {
const esp_err_t err = nvs_flash_init();
if (err == ESP_ERR_NVS_NO_FREE_PAGES || err == ESP_ERR_NVS_NEW_VERSION_FOUND) {
if (nvs_flash_erase() != ESP_OK) {
return false;
}
return nvs_flash_init() == ESP_OK;
}
return err == ESP_OK || err == ESP_ERR_INVALID_STATE;
}
} // namespace
EspIdfPlatform::EspIdfPlatform(TPUart::Interface::Abstract* interface,
const char* nvs_namespace)
: nvs_namespace_(nvs_namespace == nullptr ? "openknx" : nvs_namespace) {
this->interface(interface);
}
EspIdfPlatform::~EspIdfPlatform() { closeMultiCast(); }
void EspIdfPlatform::networkInterface(esp_netif_t* netif) { netif_ = netif; }
esp_netif_t* EspIdfPlatform::networkInterface() const { return netif_; }
esp_netif_t* EspIdfPlatform::effectiveNetif() const {
return netif_ == nullptr ? findDefaultNetif() : netif_;
}
uint32_t EspIdfPlatform::currentIpAddress() {
esp_netif_ip_info_t ip_info{};
esp_netif_t* netif = effectiveNetif();
if (netif == nullptr || esp_netif_get_ip_info(netif, &ip_info) != ESP_OK) {
return 0;
}
return ip_info.ip.addr;
}
uint32_t EspIdfPlatform::currentSubnetMask() {
esp_netif_ip_info_t ip_info{};
esp_netif_t* netif = effectiveNetif();
if (netif == nullptr || esp_netif_get_ip_info(netif, &ip_info) != ESP_OK) {
return 0;
}
return ip_info.netmask.addr;
}
uint32_t EspIdfPlatform::currentDefaultGateway() {
esp_netif_ip_info_t ip_info{};
esp_netif_t* netif = effectiveNetif();
if (netif == nullptr || esp_netif_get_ip_info(netif, &ip_info) != ESP_OK) {
return 0;
}
return ip_info.gw.addr;
}
void EspIdfPlatform::macAddress(uint8_t* data) {
if (data == nullptr) {
return;
}
if (esp_read_mac(data, ESP_MAC_WIFI_STA) != ESP_OK) {
std::memset(data, 0, 6);
}
}
uint32_t EspIdfPlatform::uniqueSerialNumber() {
uint8_t mac[6]{};
macAddress(mac);
return (static_cast<uint32_t>(mac[0]) << 24) | (static_cast<uint32_t>(mac[1]) << 16) |
(static_cast<uint32_t>(mac[4]) << 8) | mac[5];
}
void EspIdfPlatform::restart() { esp_restart(); }
void EspIdfPlatform::fatalError() {
ESP_LOGE(kTag, "OpenKNX fatal error");
while (true) {
vTaskDelay(pdMS_TO_TICKS(1000));
}
}
void EspIdfPlatform::setupMultiCast(uint32_t addr, uint16_t port) {
closeMultiCast();
udp_sock_ = socket(AF_INET, SOCK_DGRAM, IPPROTO_IP);
if (udp_sock_ < 0) {
ESP_LOGE(kTag, "failed to create UDP socket: errno=%d", errno);
return;
}
int reuse = 1;
setsockopt(udp_sock_, SOL_SOCKET, SO_REUSEADDR, &reuse, sizeof(reuse));
sockaddr_in bind_addr{};
bind_addr.sin_family = AF_INET;
bind_addr.sin_addr.s_addr = htonl(INADDR_ANY);
bind_addr.sin_port = htons(port);
if (bind(udp_sock_, reinterpret_cast<sockaddr*>(&bind_addr), sizeof(bind_addr)) < 0) {
ESP_LOGE(kTag, "failed to bind UDP socket: errno=%d", errno);
closeMultiCast();
return;
}
timeval timeout{};
timeout.tv_sec = 0;
timeout.tv_usec = 1000;
setsockopt(udp_sock_, SOL_SOCKET, SO_RCVTIMEO, &timeout, sizeof(timeout));
ip_mreq mreq{};
mreq.imr_multiaddr.s_addr = htonl(addr);
mreq.imr_interface.s_addr = currentIpAddress();
if (setsockopt(udp_sock_, IPPROTO_IP, IP_ADD_MEMBERSHIP, &mreq, sizeof(mreq)) < 0) {
ESP_LOGW(kTag, "failed to join KNX multicast group: errno=%d", errno);
}
uint8_t loop = 0;
setsockopt(udp_sock_, IPPROTO_IP, IP_MULTICAST_LOOP, &loop, sizeof(loop));
multicast_remote_ = {};
multicast_remote_.sin_family = AF_INET;
multicast_remote_.sin_addr.s_addr = htonl(addr);
multicast_remote_.sin_port = htons(port);
}
void EspIdfPlatform::closeMultiCast() {
if (udp_sock_ >= 0) {
shutdown(udp_sock_, SHUT_RDWR);
close(udp_sock_);
udp_sock_ = -1;
}
has_last_remote_ = false;
}
bool EspIdfPlatform::sendBytesMultiCast(uint8_t* buffer, uint16_t len) {
if (udp_sock_ < 0 || buffer == nullptr || len == 0) {
return false;
}
const int sent = sendto(udp_sock_, buffer, len, 0, reinterpret_cast<sockaddr*>(&multicast_remote_),
sizeof(multicast_remote_));
return sent == len;
}
int EspIdfPlatform::readBytesMultiCast(uint8_t* buffer, uint16_t maxLen) {
uint32_t src_addr = 0;
uint16_t src_port = 0;
return readBytesMultiCast(buffer, maxLen, src_addr, src_port);
}
int EspIdfPlatform::readBytesMultiCast(uint8_t* buffer, uint16_t maxLen, uint32_t& src_addr,
uint16_t& src_port) {
if (udp_sock_ < 0 || buffer == nullptr || maxLen == 0) {
return 0;
}
sockaddr_in remote{};
socklen_t remote_len = sizeof(remote);
const int len = recvfrom(udp_sock_, buffer, maxLen, 0, reinterpret_cast<sockaddr*>(&remote),
&remote_len);
if (len <= 0) {
return 0;
}
last_remote_ = remote;
has_last_remote_ = true;
src_addr = ntohl(remote.sin_addr.s_addr);
src_port = ntohs(remote.sin_port);
return len;
}
bool EspIdfPlatform::sendBytesUniCast(uint32_t addr, uint16_t port, uint8_t* buffer,
uint16_t len) {
if (udp_sock_ < 0 || buffer == nullptr || len == 0) {
return false;
}
sockaddr_in remote{};
if (addr == 0 && port == 0 && has_last_remote_) {
remote = last_remote_;
} else {
remote.sin_family = AF_INET;
remote.sin_addr.s_addr = htonl(addr);
remote.sin_port = htons(port);
}
const int sent = sendto(udp_sock_, buffer, len, 0, reinterpret_cast<sockaddr*>(&remote),
sizeof(remote));
return sent == len;
}
void EspIdfPlatform::loadEeprom(size_t size) {
if (eeprom_loaded_ && eeprom_.size() == size) {
return;
}
eeprom_.assign(size, 0xff);
eeprom_loaded_ = true;
if (!ensureNvsReady()) {
ESP_LOGW(kTag, "NVS is not ready for OpenKNX EEPROM load");
return;
}
nvs_handle_t handle = 0;
if (nvs_open(nvs_namespace_.c_str(), NVS_READONLY, &handle) != ESP_OK) {
return;
}
size_t stored_size = 0;
if (nvs_get_blob(handle, kEepromKey, nullptr, &stored_size) == ESP_OK && stored_size > 0) {
std::vector<uint8_t> stored(stored_size);
if (nvs_get_blob(handle, kEepromKey, stored.data(), &stored_size) == ESP_OK) {
std::memcpy(eeprom_.data(), stored.data(), std::min(eeprom_.size(), stored.size()));
}
}
nvs_close(handle);
}
uint8_t* EspIdfPlatform::getEepromBuffer(uint32_t size) {
loadEeprom(size);
return eeprom_.data();
}
void EspIdfPlatform::commitToEeprom() {
if (eeprom_.empty()) {
return;
}
if (!ensureNvsReady()) {
ESP_LOGW(kTag, "NVS is not ready for OpenKNX EEPROM commit");
return;
}
nvs_handle_t handle = 0;
esp_err_t err = nvs_open(nvs_namespace_.c_str(), NVS_READWRITE, &handle);
if (err != ESP_OK) {
ESP_LOGW(kTag, "failed to open OpenKNX NVS namespace: %s", esp_err_to_name(err));
return;
}
err = nvs_set_blob(handle, kEepromKey, eeprom_.data(), eeprom_.size());
if (err == ESP_OK) {
err = nvs_commit(handle);
}
if (err != ESP_OK) {
ESP_LOGW(kTag, "failed to commit OpenKNX EEPROM: %s", esp_err_to_name(err));
}
nvs_close(handle);
}
} // namespace gateway::openknx
@@ -0,0 +1,227 @@
#include "openknx_idf/ets_device_runtime.h"
#include "knx/cemi_server.h"
#include "knx/property.h"
#include <algorithm>
#include <cstdint>
#include <utility>
#include <vector>
namespace gateway::openknx {
namespace {
thread_local EtsDeviceRuntime* active_function_property_runtime = nullptr;
class ActiveFunctionPropertyRuntimeScope {
public:
explicit ActiveFunctionPropertyRuntimeScope(EtsDeviceRuntime* runtime)
: previous_(active_function_property_runtime) {
active_function_property_runtime = runtime;
}
~ActiveFunctionPropertyRuntimeScope() { active_function_property_runtime = previous_; }
private:
EtsDeviceRuntime* previous_;
};
constexpr uint16_t kInvalidIndividualAddress = 0xffff;
constexpr uint16_t kReg1DaliManufacturerId = 0x00a4;
constexpr uint8_t kReg1DaliApplicationNumber = 0x01;
constexpr uint8_t kReg1DaliApplicationVersion = 0x05;
constexpr uint8_t kReg1DaliOrderNumber[10] = {'R', 'E', 'G', '1', '-', 'D', 'a', 'l', 'i', 0};
bool IsUsableIndividualAddress(uint16_t address) {
return address != 0 && address != kInvalidIndividualAddress;
}
void ApplyReg1DaliIdentity(Bau07B0& device, EspIdfPlatform& platform) {
device.deviceObject().manufacturerId(kReg1DaliManufacturerId);
device.deviceObject().bauNumber(platform.uniqueSerialNumber());
device.deviceObject().orderNumber(kReg1DaliOrderNumber);
const uint8_t program_version[5] = {0x00, 0xa4, 0x00, kReg1DaliApplicationNumber,
kReg1DaliApplicationVersion};
device.parameters().property(PID_PROG_VERSION)->write(program_version);
}
} // namespace
EtsDeviceRuntime::EtsDeviceRuntime(std::string nvs_namespace,
uint16_t fallback_individual_address)
: nvs_namespace_(std::move(nvs_namespace)),
platform_(nullptr, nvs_namespace_.c_str()),
device_(platform_) {
ApplyReg1DaliIdentity(device_, platform_);
if (IsUsableIndividualAddress(fallback_individual_address)) {
device_.deviceObject().individualAddress(fallback_individual_address);
}
device_.readMemory();
if (!IsUsableIndividualAddress(device_.deviceObject().individualAddress()) &&
IsUsableIndividualAddress(fallback_individual_address)) {
device_.deviceObject().individualAddress(fallback_individual_address);
}
if (auto* server = device_.getCemiServer()) {
server->clientAddress(DefaultTunnelClientAddress(device_.deviceObject().individualAddress()));
server->tunnelFrameCallback(&EtsDeviceRuntime::EmitTunnelFrame, this);
}
device_.functionPropertyCallback(&EtsDeviceRuntime::HandleFunctionPropertyCommand);
device_.functionPropertyStateCallback(&EtsDeviceRuntime::HandleFunctionPropertyState);
}
EtsDeviceRuntime::~EtsDeviceRuntime() {
device_.functionPropertyCallback(nullptr);
device_.functionPropertyStateCallback(nullptr);
if (auto* server = device_.getCemiServer()) {
server->tunnelFrameCallback(nullptr, nullptr);
}
}
uint16_t EtsDeviceRuntime::individualAddress() const {
return const_cast<Bau07B0&>(device_).deviceObject().individualAddress();
}
uint16_t EtsDeviceRuntime::tunnelClientAddress() const {
if (auto* server = const_cast<Bau07B0&>(device_).getCemiServer()) {
return server->clientAddress();
}
return DefaultTunnelClientAddress(individualAddress());
}
bool EtsDeviceRuntime::configured() const { return const_cast<Bau07B0&>(device_).configured(); }
EtsMemorySnapshot EtsDeviceRuntime::snapshot() const {
EtsMemorySnapshot out;
auto& device = const_cast<Bau07B0&>(device_);
out.configured = device.configured();
out.individual_address = device.deviceObject().individualAddress();
device.forEachEtsAssociation(
[](uint16_t group_address, uint16_t group_object_number, void* context) {
auto* associations = static_cast<std::vector<EtsAssociation>*>(context);
if (associations != nullptr) {
associations->push_back(EtsAssociation{group_address, group_object_number});
}
},
&out.associations);
std::sort(out.associations.begin(), out.associations.end(),
[](const EtsAssociation& lhs, const EtsAssociation& rhs) {
if (lhs.group_address != rhs.group_address) {
return lhs.group_address < rhs.group_address;
}
return lhs.group_object_number < rhs.group_object_number;
});
out.associations.erase(
std::unique(out.associations.begin(), out.associations.end(),
[](const EtsAssociation& lhs, const EtsAssociation& rhs) {
return lhs.group_address == rhs.group_address &&
lhs.group_object_number == rhs.group_object_number;
}),
out.associations.end());
return out;
}
void EtsDeviceRuntime::setFunctionPropertyHandlers(FunctionPropertyHandler command_handler,
FunctionPropertyHandler state_handler) {
command_handler_ = std::move(command_handler);
state_handler_ = std::move(state_handler);
}
bool EtsDeviceRuntime::handleTunnelFrame(const uint8_t* data, size_t len,
CemiFrameSender sender) {
auto* server = device_.getCemiServer();
if (server == nullptr || data == nullptr || len < 2) {
return false;
}
std::vector<uint8_t> frame_data(data, data + len);
CemiFrame frame(frame_data.data(), static_cast<uint16_t>(frame_data.size()));
const bool consumed = shouldConsumeTunnelFrame(frame);
if (!consumed) {
return false;
}
sender_ = std::move(sender);
ActiveFunctionPropertyRuntimeScope callback_scope(this);
server->frameReceived(frame);
loop();
sender_ = nullptr;
return consumed;
}
void EtsDeviceRuntime::loop() { device_.loop(); }
void EtsDeviceRuntime::EmitTunnelFrame(CemiFrame& frame, void* context) {
auto* self = static_cast<EtsDeviceRuntime*>(context);
if (self == nullptr || !self->sender_) {
return;
}
self->sender_(frame.data(), frame.dataLength());
}
bool EtsDeviceRuntime::HandleFunctionPropertyCommand(uint8_t object_index, uint8_t property_id,
uint8_t length, uint8_t* data,
uint8_t* result_data,
uint8_t& result_length) {
if (active_function_property_runtime == nullptr) {
return false;
}
return DispatchFunctionProperty(&active_function_property_runtime->command_handler_, object_index,
property_id, length, data, result_data, result_length);
}
bool EtsDeviceRuntime::HandleFunctionPropertyState(uint8_t object_index, uint8_t property_id,
uint8_t length, uint8_t* data,
uint8_t* result_data,
uint8_t& result_length) {
if (active_function_property_runtime == nullptr) {
return false;
}
return DispatchFunctionProperty(&active_function_property_runtime->state_handler_, object_index,
property_id, length, data, result_data, result_length);
}
bool EtsDeviceRuntime::DispatchFunctionProperty(FunctionPropertyHandler* handler,
uint8_t object_index, uint8_t property_id,
uint8_t length, uint8_t* data,
uint8_t* result_data, uint8_t& result_length) {
if (handler == nullptr || !*handler || result_data == nullptr) {
return false;
}
std::vector<uint8_t> response;
if (!(*handler)(object_index, property_id, data, length, &response)) {
return false;
}
result_length = static_cast<uint8_t>(std::min<size_t>(response.size(), result_length));
if (result_length > 0) {
std::copy_n(response.begin(), result_length, result_data);
}
return true;
}
uint16_t EtsDeviceRuntime::DefaultTunnelClientAddress(uint16_t individual_address) {
if (!IsUsableIndividualAddress(individual_address)) {
return 0x1101;
}
const uint16_t line_base = individual_address & 0xff00;
uint16_t device = static_cast<uint16_t>((individual_address & 0x00ff) + 1);
if (device == 0 || device > 0xff) {
device = 1;
}
return static_cast<uint16_t>(line_base | device);
}
bool EtsDeviceRuntime::shouldConsumeTunnelFrame(CemiFrame& frame) const {
switch (frame.messageCode()) {
case M_PropRead_req:
case M_PropWrite_req:
case M_Reset_req:
case M_FuncPropCommand_req:
case M_FuncPropStateRead_req:
return true;
case L_data_req:
return frame.addressType() == IndividualAddress &&
frame.destinationAddress() == individualAddress();
default:
return false;
}
}
} // namespace gateway::openknx
@@ -0,0 +1,80 @@
#include "openknx_idf/ets_memory_loader.h"
#include "openknx_idf/esp_idf_platform.h"
#include "knx/bau07B0.h"
#include "knx/property.h"
#include <algorithm>
#include <cstdint>
#include <memory>
namespace gateway::openknx {
namespace {
void CollectAssociation(uint16_t group_address, uint16_t group_object_number,
void* context) {
auto* associations = static_cast<std::vector<EtsAssociation>*>(context);
if (associations == nullptr) {
return;
}
associations->push_back(EtsAssociation{group_address, group_object_number});
}
bool IsErasedMemory(const uint8_t* data, size_t size) {
if (data == nullptr) {
return false;
}
return std::all_of(data, data + size, [](uint8_t value) { return value == 0xff; });
}
constexpr uint16_t kReg1DaliManufacturerId = 0x00a4;
constexpr uint8_t kReg1DaliApplicationNumber = 0x01;
constexpr uint8_t kReg1DaliApplicationVersion = 0x05;
constexpr uint8_t kReg1DaliOrderNumber[10] = {'R', 'E', 'G', '1', '-', 'D', 'a', 'l', 'i', 0};
void ApplyReg1DaliIdentity(Bau07B0& device, EspIdfPlatform& platform) {
device.deviceObject().manufacturerId(kReg1DaliManufacturerId);
device.deviceObject().bauNumber(platform.uniqueSerialNumber());
device.deviceObject().orderNumber(kReg1DaliOrderNumber);
const uint8_t program_version[5] = {0x00, 0xa4, 0x00, kReg1DaliApplicationNumber,
kReg1DaliApplicationVersion};
device.parameters().property(PID_PROG_VERSION)->write(program_version);
}
} // namespace
EtsMemorySnapshot LoadEtsMemorySnapshot(const std::string& nvs_namespace) {
EspIdfPlatform platform(nullptr, nvs_namespace.c_str());
EtsMemorySnapshot snapshot;
const uint8_t* memory = platform.getNonVolatileMemoryStart();
const size_t memory_size = platform.getNonVolatileMemorySize();
if (memory == nullptr || memory_size == 0 || IsErasedMemory(memory, memory_size)) {
return snapshot;
}
auto device = std::make_unique<Bau07B0>(platform);
ApplyReg1DaliIdentity(*device, platform);
device->readMemory();
snapshot.configured = device->configured();
snapshot.individual_address = device->deviceObject().individualAddress();
device->forEachEtsAssociation(CollectAssociation, &snapshot.associations);
std::sort(snapshot.associations.begin(), snapshot.associations.end(),
[](const EtsAssociation& lhs, const EtsAssociation& rhs) {
if (lhs.group_address != rhs.group_address) {
return lhs.group_address < rhs.group_address;
}
return lhs.group_object_number < rhs.group_object_number;
});
snapshot.associations.erase(
std::unique(snapshot.associations.begin(), snapshot.associations.end(),
[](const EtsAssociation& lhs, const EtsAssociation& rhs) {
return lhs.group_address == rhs.group_address &&
lhs.group_object_number == rhs.group_object_number;
}),
snapshot.associations.end());
return snapshot;
}
} // namespace gateway::openknx
@@ -0,0 +1,114 @@
#include "openknx_idf/tpuart_uart_interface.h"
#include "esp_log.h"
#include <utility>
namespace gateway::openknx {
namespace {
constexpr const char* kTag = "openknx_tpuart";
} // namespace
TpuartUartInterface::TpuartUartInterface(uart_port_t uart_port, int tx_pin, int rx_pin,
size_t rx_buffer_size, size_t tx_buffer_size)
: uart_port_(uart_port),
tx_pin_(tx_pin),
rx_pin_(rx_pin),
rx_buffer_size_(rx_buffer_size),
tx_buffer_size_(tx_buffer_size) {}
TpuartUartInterface::~TpuartUartInterface() { end(); }
void TpuartUartInterface::begin(int baud) {
if (_running) {
end();
}
uart_config_t config{};
config.baud_rate = baud;
config.data_bits = UART_DATA_8_BITS;
config.parity = UART_PARITY_EVEN;
config.stop_bits = UART_STOP_BITS_1;
config.flow_ctrl = UART_HW_FLOWCTRL_DISABLE;
config.source_clk = UART_SCLK_DEFAULT;
esp_err_t err = uart_param_config(uart_port_, &config);
if (err != ESP_OK) {
ESP_LOGE(kTag, "failed to configure UART%d: %s", uart_port_, esp_err_to_name(err));
return;
}
err = uart_set_pin(uart_port_, tx_pin_ < 0 ? UART_PIN_NO_CHANGE : tx_pin_,
rx_pin_ < 0 ? UART_PIN_NO_CHANGE : rx_pin_, UART_PIN_NO_CHANGE,
UART_PIN_NO_CHANGE);
if (err != ESP_OK) {
ESP_LOGE(kTag, "failed to route UART%d pins: %s", uart_port_, esp_err_to_name(err));
return;
}
err = uart_driver_install(uart_port_, rx_buffer_size_, tx_buffer_size_, 0, nullptr, 0);
if (err != ESP_OK) {
ESP_LOGE(kTag, "failed to install UART%d driver: %s", uart_port_, esp_err_to_name(err));
return;
}
uart_set_rx_full_threshold(uart_port_, 1);
_running = true;
}
void TpuartUartInterface::end() {
if (!_running) {
return;
}
_running = false;
uart_driver_delete(uart_port_);
}
bool TpuartUartInterface::available() {
if (!_running) {
return false;
}
size_t len = 0;
return uart_get_buffered_data_len(uart_port_, &len) == ESP_OK && len > 0;
}
bool TpuartUartInterface::availableForWrite() {
if (!_running) {
return false;
}
size_t len = 0;
return uart_get_tx_buffer_free_size(uart_port_, &len) == ESP_OK && len > 0;
}
bool TpuartUartInterface::write(char value) {
if (!_running) {
return false;
}
return uart_write_bytes(uart_port_, &value, 1) == 1;
}
int TpuartUartInterface::read() {
if (!_running) {
return -1;
}
uint8_t value = 0;
return uart_read_bytes(uart_port_, &value, 1, 0) == 1 ? value : -1;
}
bool TpuartUartInterface::overflow() { return overflow_.exchange(false); }
void TpuartUartInterface::flush() {
if (_running) {
uart_flush(uart_port_);
}
}
bool TpuartUartInterface::hasCallback() { return false; }
void TpuartUartInterface::registerCallback(std::function<bool()> callback) {
callback_ = std::move(callback);
}
} // namespace gateway::openknx
Submodule
+1
Submodule knx added at 339d8472e7
Submodule
+1
Submodule knx_dali_gw added at 6064d84520
Submodule
+1
Submodule tpuart added at f8c01e6a32