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7 changed files with 21 additions and 21 deletions

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@ -13,7 +13,7 @@ ARG ROCM
RUN apt update -qq && \ RUN apt update -qq && \
apt install -y wget gpg && \ apt install -y wget gpg && \
wget -O rocm.deb https://repo.radeon.com/amdgpu-install/7.2.3/ubuntu/jammy/amdgpu-install_7.2.3.70203-1_all.deb && \ wget -O rocm.deb https://repo.radeon.com/amdgpu-install/7.2/ubuntu/jammy/amdgpu-install_7.2.70200-1_all.deb && \
apt install -y ./rocm.deb && \ apt install -y ./rocm.deb && \
apt update && \ apt update && \
apt install -qq -y rocm apt install -qq -y rocm
@ -78,10 +78,6 @@ ENV MIGRAPHX_DISABLE_MIOPEN_FUSION=1
ENV MIGRAPHX_DISABLE_SCHEDULE_PASS=1 ENV MIGRAPHX_DISABLE_SCHEDULE_PASS=1
ENV MIGRAPHX_DISABLE_REDUCE_FUSION=1 ENV MIGRAPHX_DISABLE_REDUCE_FUSION=1
ENV MIGRAPHX_ENABLE_HIPRTC_WORKAROUNDS=1 ENV MIGRAPHX_ENABLE_HIPRTC_WORKAROUNDS=1
ENV MIOPEN_CUSTOM_CACHE_DIR=/config/model_cache/migraphx
ENV MIOPEN_USER_DB_PATH=/config/model_cache/migraphx
ENV AMD_COMGR_CACHE=1
ENV AMD_COMGR_CACHE_DIR=/config/model_cache/migraphx
COPY --from=rocm-dist / / COPY --from=rocm-dist / /

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@ -1 +1 @@
onnxruntime-migraphx @ https://github.com/NickM-27/frigate-onnxruntime-rocm/releases/download/v7.2.3-1/onnxruntime_migraphx-1.24.4-cp311-cp311-linux_x86_64.whl onnxruntime-migraphx @ https://github.com/NickM-27/frigate-onnxruntime-rocm/releases/download/v7.2.0/onnxruntime_migraphx-1.23.1-cp311-cp311-linux_x86_64.whl

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@ -1,5 +1,5 @@
variable "ROCM" { variable "ROCM" {
default = "7.2.3" default = "7.2.0"
} }
variable "HSA_OVERRIDE_GFX_VERSION" { variable "HSA_OVERRIDE_GFX_VERSION" {
default = "" default = ""

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@ -1022,12 +1022,12 @@ detectors:
### ONNX Supported Models ### ONNX Supported Models
| Model | Nvidia GPU | AMD GPU | Notes | | Model | Nvidia GPU | AMD GPU | Notes |
| ------------------------------------ | ---------- | ------- | --------------------------------------------------- | | ----------------------------- | ---------- | ------- | --------------------------------------------------- |
| [YOLOv9](#yolo-v3-v4-v7-v9-2) | ✅ | ✅ | Supports CUDA Graphs for optimal Nvidia performance | | [YOLOv9](#yolo-v3-v4-v7-v9-2) | ✅ | ✅ | Supports CUDA Graphs for optimal Nvidia performance |
| [RF-DETR](#rf-detr) | ✅ | ⚠️ | Supports CUDA Graphs for optimal Nvidia performance | | [RF-DETR](#rf-detr) | ✅ | ❌ | Supports CUDA Graphs for optimal Nvidia performance |
| [YOLO-NAS](#yolo-nas-1) | ⚠️ | ⚠️ | Not supported by CUDA Graphs | | [YOLO-NAS](#yolo-nas-1) | ⚠️ | ⚠️ | Not supported by CUDA Graphs |
| [YOLOX](#yolox-1) | ✅ | ✅ | Supports CUDA Graphs for optimal Nvidia performance | | [YOLOX](#yolox-1) | ✅ | ✅ | Supports CUDA Graphs for optimal Nvidia performance |
| [D-FINE / DEIMv2](#d-fine--deimv2-1) | ⚠️ | ❌ | Not supported by CUDA Graphs | | [D-FINE / DEIMv2](#d-fine--deimv2-1) | ⚠️ | ❌ | Not supported by CUDA Graphs |
There is no default model provided, the following formats are supported: There is no default model provided, the following formats are supported:

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@ -223,11 +223,10 @@ Apple Silicon can not run within a container, so a ZMQ proxy is utilized to comm
With the [ROCm](../configuration/object_detectors.md#amdrocm-gpu-detector) detector Frigate can take advantage of many discrete AMD GPUs. With the [ROCm](../configuration/object_detectors.md#amdrocm-gpu-detector) detector Frigate can take advantage of many discrete AMD GPUs.
| Name | YOLOv9 Inference Time | YOLO-NAS Inference Time | RF-DETR Inference Time | | Name | YOLOv9 Inference Time | YOLO-NAS Inference Time |
| -------------- | --------------------------- | ------------------------- | ---------------------- | | --------- | --------------------------- | ------------------------- |
| AMD 780M | t-320: ~ 14 ms s-320: 20 ms | 320: ~ 25 ms 640: ~ 50 ms | | | AMD 780M | t-320: ~ 14 ms s-320: 20 ms | 320: ~ 25 ms 640: ~ 50 ms |
| AMD 8700G | | 320: ~ 20 ms 640: ~ 40 ms | | | AMD 8700G | | 320: ~ 20 ms 640: ~ 40 ms |
| AMD 9060XT 16G | t-320: ~ 4 ms s-320: 5 ms | 320: ~ 6 ms | Nano-320: ~ 90 ms |
## Community Supported Detectors ## Community Supported Detectors

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@ -229,10 +229,9 @@ class FaceRealTimeProcessor(RealTimeProcessorApi):
logger.debug(f"No person box available for {id}") logger.debug(f"No person box available for {id}")
return return
# YuNet (cv2.FaceDetectorYN) is trained on BGR rgb = cv2.cvtColor(frame, cv2.COLOR_YUV2RGB_I420)
bgr = cv2.cvtColor(frame, cv2.COLOR_YUV2BGR_I420)
left, top, right, bottom = person_box left, top, right, bottom = person_box
person = bgr[top:bottom, left:right] person = rgb[top:bottom, left:right]
face_box = self.__detect_face(person, self.face_config.detection_threshold) face_box = self.__detect_face(person, self.face_config.detection_threshold)
if not face_box: if not face_box:
@ -251,6 +250,11 @@ class FaceRealTimeProcessor(RealTimeProcessorApi):
) )
return return
try:
face_frame = cv2.cvtColor(face_frame, cv2.COLOR_RGB2BGR)
except Exception as e:
logger.debug(f"Failed to convert face frame color for {id}: {e}")
return
else: else:
# don't run for object without attributes # don't run for object without attributes
if not obj_data.get("current_attributes"): if not obj_data.get("current_attributes"):

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@ -132,6 +132,7 @@ class ONNXModelRunner(BaseModelRunner):
return model_type in [ return model_type in [
EnrichmentModelTypeEnum.paddleocr.value, EnrichmentModelTypeEnum.paddleocr.value,
EnrichmentModelTypeEnum.jina_v2.value, EnrichmentModelTypeEnum.jina_v2.value,
EnrichmentModelTypeEnum.arcface.value,
ModelTypeEnum.rfdetr.value, ModelTypeEnum.rfdetr.value,
ModelTypeEnum.dfine.value, ModelTypeEnum.dfine.value,
] ]