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https://github.com/blakeblackshear/frigate.git
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b65aa640c9
* Remove yolov8 support from Frigate * Remove automatic build * Formatting and remove yolov5 * Formatting --------- Co-authored-by: Nicolas Mowen <nickmowen213@gmail.com>
124 lines
4.1 KiB
Python
124 lines
4.1 KiB
Python
import logging
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import os.path
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from typing import Literal
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try:
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from hide_warnings import hide_warnings
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except: # noqa: E722
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def hide_warnings(func):
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pass
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from pydantic import Field
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from frigate.detectors.detection_api import DetectionApi
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from frigate.detectors.detector_config import BaseDetectorConfig
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logger = logging.getLogger(__name__)
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DETECTOR_KEY = "rknn"
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supported_socs = ["rk3562", "rk3566", "rk3568", "rk3588"]
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class RknnDetectorConfig(BaseDetectorConfig):
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type: Literal[DETECTOR_KEY]
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core_mask: int = Field(default=0, ge=0, le=7, title="Core mask for NPU.")
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class Rknn(DetectionApi):
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type_key = DETECTOR_KEY
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def __init__(self, config: RknnDetectorConfig):
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# create symlink for Home Assistant add on
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if not os.path.isfile("/proc/device-tree/compatible"):
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if os.path.isfile("/device-tree/compatible"):
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os.symlink("/device-tree/compatible", "/proc/device-tree/compatible")
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# find out SoC
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try:
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with open("/proc/device-tree/compatible") as file:
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soc = file.read().split(",")[-1].strip("\x00")
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except FileNotFoundError:
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logger.error("Make sure to run docker in privileged mode.")
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raise Exception("Make sure to run docker in privileged mode.")
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if soc not in supported_socs:
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logger.error(
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"Your SoC is not supported. Your SoC is: {}. Currently these SoCs are supported: {}.".format(
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soc, supported_socs
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)
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)
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raise Exception(
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"Your SoC is not supported. Your SoC is: {}. Currently these SoCs are supported: {}.".format(
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soc, supported_socs
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)
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)
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if not os.path.isfile("/usr/lib/librknnrt.so"):
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if "rk356" in soc:
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os.rename("/usr/lib/librknnrt_rk356x.so", "/usr/lib/librknnrt.so")
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elif "rk3588" in soc:
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os.rename("/usr/lib/librknnrt_rk3588.so", "/usr/lib/librknnrt.so")
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self.core_mask = config.core_mask
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self.height = config.model.height
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self.width = config.model.width
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if True:
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os.makedirs("/config/model_cache/rknn", exist_ok=True)
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if (config.model.width != 320) or (config.model.height != 320):
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logger.error(
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"Make sure to set the model width and heigth to 320 in your config.yml."
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)
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raise Exception(
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"Make sure to set the model width and heigth to 320 in your config.yml."
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)
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if config.model.input_pixel_format != "bgr":
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logger.error(
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'Make sure to set the model input_pixel_format to "bgr" in your config.yml.'
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)
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raise Exception(
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'Make sure to set the model input_pixel_format to "bgr" in your config.yml.'
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)
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if config.model.input_tensor != "nhwc":
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logger.error(
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'Make sure to set the model input_tensor to "nhwc" in your config.yml.'
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)
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raise Exception(
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'Make sure to set the model input_tensor to "nhwc" in your config.yml.'
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)
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from rknnlite.api import RKNNLite
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self.rknn = RKNNLite(verbose=False)
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if self.rknn.load_rknn(self.model_path) != 0:
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logger.error("Error initializing rknn model.")
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if self.rknn.init_runtime(core_mask=self.core_mask) != 0:
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logger.error(
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"Error initializing rknn runtime. Do you run docker in privileged mode?"
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)
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raise Exception(
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"RKNN does not currently support any models. Please see the docs for more info."
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)
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def __del__(self):
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self.rknn.release()
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@hide_warnings
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def inference(self, tensor_input):
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return self.rknn.inference(inputs=tensor_input)
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def detect_raw(self, tensor_input):
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output = self.inference(
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[
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tensor_input,
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]
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)
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return self.postprocess(output[0])
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