mirror of
https://github.com/sunnypilot/sunnypilot.git
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5d1b403015
Simplified the `run_model` method by removing the requirement to pass inputs as arguments, and instead leveraging an internal `inputs` state. Adjusted `prepare_inputs` methods across model runners to populate this internal state. This refactor improves code clarity and reduces redundancy in managing input data.
279 lines
12 KiB
Python
Executable File
279 lines
12 KiB
Python
Executable File
#!/usr/bin/env python3
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from openpilot.system.hardware import TICI
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from openpilot.selfdrive.modeld.runners.model_runner import ONNXRunner, TinyGradRunner
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#
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import time
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import numpy as np
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import cereal.messaging as messaging
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from cereal import car, log
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from setproctitle import setproctitle
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from cereal.messaging import PubMaster, SubMaster
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from msgq.visionipc import VisionIpcClient, VisionStreamType, VisionBuf
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from opendbc.car.car_helpers import get_demo_car_params
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from openpilot.common.swaglog import cloudlog
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from openpilot.common.params import Params
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from openpilot.common.filter_simple import FirstOrderFilter
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from openpilot.common.realtime import config_realtime_process
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from openpilot.common.transformations.camera import DEVICE_CAMERAS
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from openpilot.common.transformations.model import get_warp_matrix
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from openpilot.system import sentry
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from openpilot.selfdrive.controls.lib.desire_helper import DesireHelper
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from openpilot.selfdrive.modeld.parse_model_outputs import Parser
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from openpilot.selfdrive.modeld.fill_model_msg import fill_model_msg, fill_pose_msg, PublishState
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from openpilot.selfdrive.modeld.constants import ModelConstants
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from openpilot.selfdrive.modeld.models.commonmodel_pyx import DrivingModelFrame, CLContext
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PROCESS_NAME = "selfdrive.modeld.modeld"
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class FrameMeta:
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frame_id: int = 0
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timestamp_sof: int = 0
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timestamp_eof: int = 0
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def __init__(self, vipc=None):
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if vipc is not None:
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self.frame_id, self.timestamp_sof, self.timestamp_eof = vipc.frame_id, vipc.timestamp_sof, vipc.timestamp_eof
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class ModelState:
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frames: dict[str, DrivingModelFrame]
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inputs: dict[str, np.ndarray]
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output: np.ndarray
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prev_desire: np.ndarray # for tracking the rising edge of the pulse
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def __init__(self, context: CLContext):
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self.frames = {'input_imgs': DrivingModelFrame(context), 'big_input_imgs': DrivingModelFrame(context)}
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self.prev_desire = np.zeros(ModelConstants.DESIRE_LEN, dtype=np.float32)
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self.full_features_20Hz = np.zeros((ModelConstants.FULL_HISTORY_BUFFER_LEN, ModelConstants.FEATURE_LEN), dtype=np.float32)
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self.desire_20Hz = np.zeros((ModelConstants.FULL_HISTORY_BUFFER_LEN + 1, ModelConstants.DESIRE_LEN), dtype=np.float32)
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# img buffers are managed in openCL transform code
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self.numpy_inputs = {
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'desire': np.zeros((1, (ModelConstants.HISTORY_BUFFER_LEN+1), ModelConstants.DESIRE_LEN), dtype=np.float32),
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'traffic_convention': np.zeros((1, ModelConstants.TRAFFIC_CONVENTION_LEN), dtype=np.float32),
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'features_buffer': np.zeros((1, ModelConstants.HISTORY_BUFFER_LEN, ModelConstants.FEATURE_LEN), dtype=np.float32),
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}
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# Initialize model runner
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self.model_runner = TinyGradRunner() if TICI else ONNXRunner(self.frames)
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self.parser = Parser()
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net_output_size = self.model_runner.model_metadata['output_shapes']['outputs'][1]
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self.output = np.zeros(net_output_size, dtype=np.float32)
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def run(self, buf: VisionBuf, wbuf: VisionBuf, transform: np.ndarray, transform_wide: np.ndarray,
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inputs: dict[str, np.ndarray], prepare_only: bool) -> dict[str, np.ndarray] | None:
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# Model decides when action is completed, so desire input is just a pulse triggered on rising edge
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inputs['desire'][0] = 0
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new_desire = np.where(inputs['desire'] - self.prev_desire > .99, inputs['desire'], 0)
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self.prev_desire[:] = inputs['desire']
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self.desire_20Hz[:-1] = self.desire_20Hz[1:]
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self.desire_20Hz[-1] = new_desire
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self.numpy_inputs['desire'][:] = self.desire_20Hz.reshape((1,25,4,-1)).max(axis=2)
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self.numpy_inputs['traffic_convention'][:] = inputs['traffic_convention']
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imgs_cl = {'input_imgs': self.frames['input_imgs'].prepare(buf, transform.flatten()),
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'big_input_imgs': self.frames['big_input_imgs'].prepare(wbuf, transform_wide.flatten())}
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# Prepare inputs using the model runner
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self.model_runner.prepare_inputs(imgs_cl, self.numpy_inputs)
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if prepare_only:
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return None
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# Run model inference
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self.output = self.model_runner.run_model()
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outputs = self.parser.parse_outputs(self.model_runner.slice_outputs(self.output))
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self.full_features_20Hz[:-1] = self.full_features_20Hz[1:]
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self.full_features_20Hz[-1] = outputs['hidden_state'][0, :]
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idxs = np.arange(-4,-100,-4)[::-1]
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self.numpy_inputs['features_buffer'][:] = self.full_features_20Hz[idxs]
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return outputs
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def main(demo=False):
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cloudlog.warning("modeld init")
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sentry.set_tag("daemon", PROCESS_NAME)
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cloudlog.bind(daemon=PROCESS_NAME)
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setproctitle(PROCESS_NAME)
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config_realtime_process(7, 54)
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cloudlog.warning("setting up CL context")
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cl_context = CLContext()
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cloudlog.warning("CL context ready; loading model")
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model = ModelState(cl_context)
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cloudlog.warning("models loaded, modeld starting")
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# visionipc clients
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while True:
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available_streams = VisionIpcClient.available_streams("camerad", block=False)
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if available_streams:
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use_extra_client = VisionStreamType.VISION_STREAM_WIDE_ROAD in available_streams and VisionStreamType.VISION_STREAM_ROAD in available_streams
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main_wide_camera = VisionStreamType.VISION_STREAM_ROAD not in available_streams
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break
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time.sleep(.1)
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vipc_client_main_stream = VisionStreamType.VISION_STREAM_WIDE_ROAD if main_wide_camera else VisionStreamType.VISION_STREAM_ROAD
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vipc_client_main = VisionIpcClient("camerad", vipc_client_main_stream, True, cl_context)
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vipc_client_extra = VisionIpcClient("camerad", VisionStreamType.VISION_STREAM_WIDE_ROAD, False, cl_context)
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cloudlog.warning(f"vision stream set up, main_wide_camera: {main_wide_camera}, use_extra_client: {use_extra_client}")
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while not vipc_client_main.connect(False):
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time.sleep(0.1)
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while use_extra_client and not vipc_client_extra.connect(False):
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time.sleep(0.1)
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cloudlog.warning(f"connected main cam with buffer size: {vipc_client_main.buffer_len} ({vipc_client_main.width} x {vipc_client_main.height})")
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if use_extra_client:
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cloudlog.warning(f"connected extra cam with buffer size: {vipc_client_extra.buffer_len} ({vipc_client_extra.width} x {vipc_client_extra.height})")
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# messaging
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pm = PubMaster(["modelV2", "drivingModelData", "cameraOdometry"])
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sm = SubMaster(["deviceState", "carState", "roadCameraState", "liveCalibration", "driverMonitoringState", "carControl"])
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publish_state = PublishState()
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params = Params()
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# setup filter to track dropped frames
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frame_dropped_filter = FirstOrderFilter(0., 10., 1. / ModelConstants.MODEL_FREQ)
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frame_id = 0
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last_vipc_frame_id = 0
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run_count = 0
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model_transform_main = np.zeros((3, 3), dtype=np.float32)
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model_transform_extra = np.zeros((3, 3), dtype=np.float32)
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live_calib_seen = False
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buf_main, buf_extra = None, None
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meta_main = FrameMeta()
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meta_extra = FrameMeta()
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if demo:
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CP = get_demo_car_params()
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else:
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CP = messaging.log_from_bytes(params.get("CarParams", block=True), car.CarParams)
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cloudlog.info("modeld got CarParams: %s", CP.carName)
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# TODO this needs more thought, use .2s extra for now to estimate other delays
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steer_delay = CP.steerActuatorDelay + .2
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DH = DesireHelper()
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while True:
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# Keep receiving frames until we are at least 1 frame ahead of previous extra frame
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while meta_main.timestamp_sof < meta_extra.timestamp_sof + 25000000:
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buf_main = vipc_client_main.recv()
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meta_main = FrameMeta(vipc_client_main)
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if buf_main is None:
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break
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if buf_main is None:
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cloudlog.debug("vipc_client_main no frame")
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continue
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if use_extra_client:
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# Keep receiving extra frames until frame id matches main camera
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while True:
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buf_extra = vipc_client_extra.recv()
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meta_extra = FrameMeta(vipc_client_extra)
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if buf_extra is None or meta_main.timestamp_sof < meta_extra.timestamp_sof + 25000000:
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break
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if buf_extra is None:
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cloudlog.debug("vipc_client_extra no frame")
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continue
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if abs(meta_main.timestamp_sof - meta_extra.timestamp_sof) > 10000000:
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cloudlog.error(f"frames out of sync! main: {meta_main.frame_id} ({meta_main.timestamp_sof / 1e9:.5f}),\
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extra: {meta_extra.frame_id} ({meta_extra.timestamp_sof / 1e9:.5f})")
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else:
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# Use single camera
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buf_extra = buf_main
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meta_extra = meta_main
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sm.update(0)
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desire = DH.desire
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is_rhd = sm["driverMonitoringState"].isRHD
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frame_id = sm["roadCameraState"].frameId
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v_ego = max(sm["carState"].vEgo, 0.)
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if sm.updated["liveCalibration"] and sm.seen['roadCameraState'] and sm.seen['deviceState']:
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device_from_calib_euler = np.array(sm["liveCalibration"].rpyCalib, dtype=np.float32)
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dc = DEVICE_CAMERAS[(str(sm['deviceState'].deviceType), str(sm['roadCameraState'].sensor))]
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model_transform_main = get_warp_matrix(device_from_calib_euler, dc.ecam.intrinsics if main_wide_camera else dc.fcam.intrinsics, False).astype(np.float32)
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model_transform_extra = get_warp_matrix(device_from_calib_euler, dc.ecam.intrinsics, True).astype(np.float32)
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live_calib_seen = True
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traffic_convention = np.zeros(2)
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traffic_convention[int(is_rhd)] = 1
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vec_desire = np.zeros(ModelConstants.DESIRE_LEN, dtype=np.float32)
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if desire >= 0 and desire < ModelConstants.DESIRE_LEN:
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vec_desire[desire] = 1
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# tracked dropped frames
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vipc_dropped_frames = max(0, meta_main.frame_id - last_vipc_frame_id - 1)
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frames_dropped = frame_dropped_filter.update(min(vipc_dropped_frames, 10))
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if run_count < 10: # let frame drops warm up
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frame_dropped_filter.x = 0.
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frames_dropped = 0.
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run_count = run_count + 1
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frame_drop_ratio = frames_dropped / (1 + frames_dropped)
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prepare_only = vipc_dropped_frames > 0
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if prepare_only:
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cloudlog.error(f"skipping model eval. Dropped {vipc_dropped_frames} frames")
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inputs:dict[str, np.ndarray] = {
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'desire': vec_desire,
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'traffic_convention': traffic_convention,
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}
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mt1 = time.perf_counter()
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model_output = model.run(buf_main, buf_extra, model_transform_main, model_transform_extra, inputs, prepare_only)
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mt2 = time.perf_counter()
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model_execution_time = mt2 - mt1
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if model_output is not None:
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modelv2_send = messaging.new_message('modelV2')
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drivingdata_send = messaging.new_message('drivingModelData')
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posenet_send = messaging.new_message('cameraOdometry')
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fill_model_msg(drivingdata_send, modelv2_send, model_output, v_ego, steer_delay,
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publish_state, meta_main.frame_id, meta_extra.frame_id, frame_id,
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frame_drop_ratio, meta_main.timestamp_eof, model_execution_time, live_calib_seen)
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desire_state = modelv2_send.modelV2.meta.desireState
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l_lane_change_prob = desire_state[log.Desire.laneChangeLeft]
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r_lane_change_prob = desire_state[log.Desire.laneChangeRight]
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lane_change_prob = l_lane_change_prob + r_lane_change_prob
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DH.update(sm['carState'], sm['carControl'].latActive, lane_change_prob)
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modelv2_send.modelV2.meta.laneChangeState = DH.lane_change_state
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modelv2_send.modelV2.meta.laneChangeDirection = DH.lane_change_direction
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drivingdata_send.drivingModelData.meta.laneChangeState = DH.lane_change_state
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drivingdata_send.drivingModelData.meta.laneChangeDirection = DH.lane_change_direction
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fill_pose_msg(posenet_send, model_output, meta_main.frame_id, vipc_dropped_frames, meta_main.timestamp_eof, live_calib_seen)
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pm.send('modelV2', modelv2_send)
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pm.send('drivingModelData', drivingdata_send)
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pm.send('cameraOdometry', posenet_send)
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last_vipc_frame_id = meta_main.frame_id
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if __name__ == "__main__":
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try:
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import argparse
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parser = argparse.ArgumentParser()
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parser.add_argument('--demo', action='store_true', help='A boolean for demo mode.')
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args = parser.parse_args()
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main(demo=args.demo)
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except KeyboardInterrupt:
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cloudlog.warning(f"child {PROCESS_NAME} got SIGINT")
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except Exception:
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sentry.capture_exception()
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raise
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