IQ.Pilot Release Commit @ 70bd095
This commit is contained in:
@@ -1,15 +0,0 @@
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# driver monitoring (DM)
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Uploading driver-facing camera footage is opt-in, but it is encouraged to opt-in to improve the DM model. You can always change your preference using the "Record and Upload Driver Camera" toggle.
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## Troubleshooting
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Before creating a bug report, go through these troubleshooting steps.
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* Ensure the driver-facing camera has a good view of the driver in normal driving positions.
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* This can be checked in Settings -> Device -> Preview Driver Camera (when car is off).
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* If the camera can't see the driver, the device should be re-mounted.
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## Bug report
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In order for us to look into DM bug reports, we'll need the driver-facing camera footage. If you don't normally have this enabled, simply enable the toggle for a single drive. Also ensure the "Upload Raw Logs" toggle is enabled before going for a drive.
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@@ -1,8 +1,20 @@
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#!/usr/bin/env python3
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from types import SimpleNamespace
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import cereal.messaging as messaging
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from openpilot.common.params import Params
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from openpilot.common.realtime import config_realtime_process
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from openpilot.selfdrive.monitoring.helpers import DriverMonitoring
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from openpilot.selfdrive.monitoring.policy import DriverMonitoring
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def get_dm_inputs(sm):
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return {
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'driverStateV2': sm['driverStateV2'],
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'liveCalibration': sm['liveCalibration'],
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'carState': sm['carState'],
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'selfdriveState': SimpleNamespace(enabled=sm['selfdriveState'].enabled or sm['carControl'].latActive),
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'modelV2': sm['modelV2'],
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}
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def dmonitoringd_thread():
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@@ -25,9 +37,9 @@ def dmonitoringd_thread():
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valid = sm.all_checks()
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if demo_mode and sm.valid['driverStateV2']:
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DM.run_step(sm, demo=demo_mode)
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DM.run_step(get_dm_inputs(sm), demo=True)
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elif valid:
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DM.run_step(sm, demo=demo_mode)
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DM.run_step(get_dm_inputs(sm), demo=demo_mode)
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# publish
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dat = DM.get_state_packet(valid=valid)
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@@ -40,9 +52,9 @@ def dmonitoringd_thread():
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# save rhd virtual toggle every 5 mins
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if (sm['driverStateV2'].frameId % 6000 == 0 and not demo_mode and
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DM.wheelpos.prob_offseter.filtered_stat.n > DM.settings._WHEELPOS_FILTER_MIN_COUNT and
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DM.wheel_on_right == (DM.wheelpos.prob_offseter.filtered_stat.M > DM.settings._WHEELPOS_THRESHOLD)):
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params.put_bool_nonblocking("IsRhdDetected", DM.wheel_on_right)
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DM.wheelpos_offsetter.filtered_stat.n > DM.settings._WHEELPOS_FILTER_MIN_COUNT and
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DM.wheel_on_right == (DM.wheelpos_offsetter.filtered_stat.M > DM.settings._WHEELPOS_THRESHOLD)):
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params.put_bool("IsRhdDetected", DM.wheel_on_right)
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def main():
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dmonitoringd_thread()
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@@ -1,474 +0,0 @@
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from math import atan2
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import numpy as np
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from cereal import car, log
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import cereal.messaging as messaging
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from openpilot.selfdrive.selfdrived.events import Events
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from openpilot.common.realtime import DT_DMON
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from openpilot.common.filter_simple import FirstOrderFilter
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from openpilot.common.params import Params
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from openpilot.common.stat_live import RunningStatFilter
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from openpilot.common.transformations.camera import DEVICE_CAMERAS
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from openpilot.selfdrive.locationd.calibration_helpers import get_calibrated_rpy
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from openpilot.system.hardware import HARDWARE
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EventName = log.OnroadEvent.EventName
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# ******************************************************************************************
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# NOTE: To fork maintainers.
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# Disabling or nerfing safety features will get you and your users banned from our servers.
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# We recommend that you do not change these numbers from the defaults.
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# ******************************************************************************************
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class DRIVER_MONITOR_SETTINGS:
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def __init__(self, device_type):
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self._DT_DMON = DT_DMON
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# ref (page15-16): https://eur-lex.europa.eu/legal-content/EN/TXT/PDF/?uri=CELEX:42018X1947&rid=2
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self._AWARENESS_TIME = 30. # passive wheeltouch total timeout
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self._AWARENESS_PRE_TIME_TILL_TERMINAL = 15.
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self._AWARENESS_PROMPT_TIME_TILL_TERMINAL = 6.
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self._DISTRACTED_TIME = 11. # active monitoring total timeout
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self._DISTRACTED_PRE_TIME_TILL_TERMINAL = 8.
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self._DISTRACTED_PROMPT_TIME_TILL_TERMINAL = 6.
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self._FACE_THRESHOLD = 0.7
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self._EYE_THRESHOLD = 0.65
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self._SG_THRESHOLD = 0.9
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self._BLINK_THRESHOLD = 0.865
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self._PHONE_THRESH = 0.75 if device_type == 'mici' else 0.4
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self._PHONE_THRESH2 = 15.0
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self._PHONE_MAX_OFFSET = 0.06
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self._PHONE_MIN_OFFSET = 0.025
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self._PHONE_DATA_AVG = 0.05
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self._PHONE_DATA_VAR = 3*0.005
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self._PHONE_MAX_COUNT = int(360 / self._DT_DMON)
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self._POSE_PITCH_THRESHOLD = 0.3133
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self._POSE_PITCH_THRESHOLD_SLACK = 0.3237
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self._POSE_PITCH_THRESHOLD_STRICT = self._POSE_PITCH_THRESHOLD
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self._POSE_YAW_THRESHOLD = 0.4020
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self._POSE_YAW_THRESHOLD_SLACK = 0.5042
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self._POSE_YAW_THRESHOLD_STRICT = self._POSE_YAW_THRESHOLD
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self._PITCH_NATURAL_OFFSET = 0.011 # initial value before offset is learned
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self._PITCH_NATURAL_THRESHOLD = 0.449
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self._YAW_NATURAL_OFFSET = 0.075 # initial value before offset is learned
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self._PITCH_NATURAL_VAR = 3*0.01
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self._YAW_NATURAL_VAR = 3*0.05
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self._PITCH_MAX_OFFSET = 0.124
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self._PITCH_MIN_OFFSET = -0.0881
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self._YAW_MAX_OFFSET = 0.289
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self._YAW_MIN_OFFSET = -0.0246
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self._DCAM_UNCERTAIN_ALERT_THRESHOLD = 0.1
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self._DCAM_UNCERTAIN_RESET_COUNT = int(20 / self._DT_DMON)
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self._POSESTD_THRESHOLD = 0.3
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self._HI_STD_FALLBACK_TIME = int(10 / self._DT_DMON) # fall back to wheel touch if model is uncertain for 10s
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self._DISTRACTED_FILTER_TS = 0.25 # 0.6Hz
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self._ALWAYS_ON_ALERT_MIN_SPEED = 11
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self._POSE_CALIB_MIN_SPEED = 13 # 30 mph
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self._POSE_OFFSET_MIN_COUNT = int(60 / self._DT_DMON) # valid data counts before calibration completes, 1min cumulative
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self._POSE_OFFSET_MAX_COUNT = int(360 / self._DT_DMON) # stop deweighting new data after 6 min, aka "short term memory"
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self._WHEELPOS_CALIB_MIN_SPEED = 11
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self._WHEELPOS_THRESHOLD = 0.5
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self._WHEELPOS_FILTER_MIN_COUNT = int(15 / self._DT_DMON) # allow 15 seconds to converge wheel side
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self._WHEELPOS_DATA_AVG = 0.03
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self._WHEELPOS_DATA_VAR = 3*5.5e-5
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self._WHEELPOS_MAX_COUNT = -1
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self._RECOVERY_FACTOR_MAX = 5. # relative to minus step change
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self._RECOVERY_FACTOR_MIN = 1.25 # relative to minus step change
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self._MAX_TERMINAL_ALERTS = 3 # not allowed to engage after 3 terminal alerts
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self._MAX_TERMINAL_DURATION = int(30 / self._DT_DMON) # not allowed to engage after 30s of terminal alerts
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class DistractedType:
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NOT_DISTRACTED = 0
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DISTRACTED_POSE = 1 << 0
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DISTRACTED_BLINK = 1 << 1
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DISTRACTED_PHONE = 1 << 2
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class DriverPose:
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def __init__(self, settings):
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pitch_filter_raw_priors = (settings._PITCH_NATURAL_OFFSET, settings._PITCH_NATURAL_VAR, 2)
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yaw_filter_raw_priors = (settings._YAW_NATURAL_OFFSET, settings._YAW_NATURAL_VAR, 2)
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self.yaw = 0.
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self.pitch = 0.
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self.roll = 0.
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self.yaw_std = 0.
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self.pitch_std = 0.
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self.roll_std = 0.
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self.pitch_offseter = RunningStatFilter(raw_priors=pitch_filter_raw_priors, max_trackable=settings._POSE_OFFSET_MAX_COUNT)
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self.yaw_offseter = RunningStatFilter(raw_priors=yaw_filter_raw_priors, max_trackable=settings._POSE_OFFSET_MAX_COUNT)
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self.calibrated = False
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self.low_std = True
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self.cfactor_pitch = 1.
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self.cfactor_yaw = 1.
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class DriverProb:
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def __init__(self, raw_priors, max_trackable):
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self.prob = 0.
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self.prob_offseter = RunningStatFilter(raw_priors=raw_priors, max_trackable=max_trackable)
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self.prob_calibrated = False
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class DriverBlink:
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def __init__(self):
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self.left = 0.
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self.right = 0.
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# model output refers to center of undistorted+leveled image
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EFL = 598.0 # focal length in K
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cam = DEVICE_CAMERAS[("tici", "ar0231")] # corrected image has same size as raw
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W, H = (cam.dcam.width, cam.dcam.height) # corrected image has same size as raw
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def face_orientation_from_net(angles_desc, pos_desc, rpy_calib):
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# the output of these angles are in device frame
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# so from driver's perspective, pitch is up and yaw is right
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pitch_net, yaw_net, roll_net = angles_desc
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face_pixel_position = ((pos_desc[0]+0.5)*W, (pos_desc[1]+0.5)*H)
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yaw_focal_angle = atan2(face_pixel_position[0] - W//2, EFL)
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pitch_focal_angle = atan2(face_pixel_position[1] - H//2, EFL)
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pitch = pitch_net + pitch_focal_angle
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yaw = -yaw_net + yaw_focal_angle
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# no calib for roll
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pitch -= rpy_calib[1]
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yaw -= rpy_calib[2]
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return roll_net, pitch, yaw
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class DriverMonitoring:
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def __init__(self, rhd_saved=False, settings=None, always_on=False):
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# init policy settings
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self.settings = settings if settings is not None else DRIVER_MONITOR_SETTINGS(device_type=HARDWARE.get_device_type())
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# init driver status
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wheelpos_filter_raw_priors = (self.settings._WHEELPOS_DATA_AVG, self.settings._WHEELPOS_DATA_VAR, 2)
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phone_filter_raw_priors = (self.settings._PHONE_DATA_AVG, self.settings._PHONE_DATA_VAR, 2)
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self.wheelpos = DriverProb(raw_priors=wheelpos_filter_raw_priors, max_trackable=self.settings._WHEELPOS_MAX_COUNT)
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self.phone = DriverProb(raw_priors=phone_filter_raw_priors, max_trackable=self.settings._PHONE_MAX_COUNT)
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self.pose = DriverPose(settings=self.settings)
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self.blink = DriverBlink()
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self.always_on = always_on
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self.distracted_types = []
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self.driver_distracted = False
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self.driver_distraction_filter = FirstOrderFilter(0., self.settings._DISTRACTED_FILTER_TS, self.settings._DT_DMON)
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self.wheel_on_right = False
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self.wheel_on_right_last = None
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self.wheel_on_right_default = rhd_saved
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self.face_detected = False
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self.terminal_alert_cnt = 0
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self.terminal_time = 0
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self.step_change = 0.
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self.active_monitoring_mode = True
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self.is_model_uncertain = False
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self.hi_stds = 0
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self.threshold_pre = self.settings._DISTRACTED_PRE_TIME_TILL_TERMINAL / self.settings._DISTRACTED_TIME
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self.threshold_prompt = self.settings._DISTRACTED_PROMPT_TIME_TILL_TERMINAL / self.settings._DISTRACTED_TIME
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self.dcam_uncertain_cnt = 0
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self.dcam_reset_cnt = 0
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self.params = Params()
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self.too_distracted = self.params.get_bool("DriverTooDistracted")
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self._reset_awareness()
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self._set_timers(active_monitoring=True)
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self._reset_events()
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def _reset_awareness(self):
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self.awareness = 1.
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self.awareness_active = 1.
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self.awareness_passive = 1.
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def _reset_events(self):
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self.current_events = Events()
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def _set_timers(self, active_monitoring):
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if self.active_monitoring_mode and self.awareness <= self.threshold_prompt:
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if active_monitoring:
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self.step_change = self.settings._DT_DMON / self.settings._DISTRACTED_TIME
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else:
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self.step_change = 0.
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return # no exploit after orange alert
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elif self.awareness <= 0.:
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return
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if active_monitoring:
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# when falling back from passive mode to active mode, reset awareness to avoid false alert
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if not self.active_monitoring_mode:
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self.awareness_passive = self.awareness
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self.awareness = self.awareness_active
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self.threshold_pre = self.settings._DISTRACTED_PRE_TIME_TILL_TERMINAL / self.settings._DISTRACTED_TIME
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self.threshold_prompt = self.settings._DISTRACTED_PROMPT_TIME_TILL_TERMINAL / self.settings._DISTRACTED_TIME
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self.step_change = self.settings._DT_DMON / self.settings._DISTRACTED_TIME
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self.active_monitoring_mode = True
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else:
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if self.active_monitoring_mode:
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self.awareness_active = self.awareness
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self.awareness = self.awareness_passive
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self.threshold_pre = self.settings._AWARENESS_PRE_TIME_TILL_TERMINAL / self.settings._AWARENESS_TIME
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self.threshold_prompt = self.settings._AWARENESS_PROMPT_TIME_TILL_TERMINAL / self.settings._AWARENESS_TIME
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self.step_change = self.settings._DT_DMON / self.settings._AWARENESS_TIME
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self.active_monitoring_mode = False
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def _set_policy(self, brake_disengage_prob, car_speed):
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bp = brake_disengage_prob
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k1 = max(-0.00156*((car_speed-16)**2)+0.6, 0.2)
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bp_normal = max(min(bp / k1, 0.5),0)
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self.pose.cfactor_pitch = np.interp(bp_normal, [0, 0.5],
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[self.settings._POSE_PITCH_THRESHOLD_SLACK,
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self.settings._POSE_PITCH_THRESHOLD_STRICT]) / self.settings._POSE_PITCH_THRESHOLD
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self.pose.cfactor_yaw = np.interp(bp_normal, [0, 0.5],
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[self.settings._POSE_YAW_THRESHOLD_SLACK,
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self.settings._POSE_YAW_THRESHOLD_STRICT]) / self.settings._POSE_YAW_THRESHOLD
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def _get_distracted_types(self):
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distracted_types = []
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if not self.pose.calibrated:
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pitch_error = self.pose.pitch - self.settings._PITCH_NATURAL_OFFSET
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yaw_error = self.pose.yaw - self.settings._YAW_NATURAL_OFFSET
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else:
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pitch_error = self.pose.pitch - min(max(self.pose.pitch_offseter.filtered_stat.mean(),
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self.settings._PITCH_MIN_OFFSET), self.settings._PITCH_MAX_OFFSET)
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yaw_error = self.pose.yaw - min(max(self.pose.yaw_offseter.filtered_stat.mean(),
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self.settings._YAW_MIN_OFFSET), self.settings._YAW_MAX_OFFSET)
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pitch_error = 0 if pitch_error > 0 else abs(pitch_error) # no positive pitch limit
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yaw_error = abs(yaw_error)
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pitch_threshold = self.settings._POSE_PITCH_THRESHOLD * self.pose.cfactor_pitch if self.pose.calibrated else self.settings._PITCH_NATURAL_THRESHOLD
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yaw_threshold = self.settings._POSE_YAW_THRESHOLD * self.pose.cfactor_yaw
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if pitch_error > pitch_threshold or yaw_error > yaw_threshold:
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distracted_types.append(DistractedType.DISTRACTED_POSE)
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if (self.blink.left + self.blink.right)*0.5 > self.settings._BLINK_THRESHOLD:
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distracted_types.append(DistractedType.DISTRACTED_BLINK)
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if self.phone.prob_calibrated:
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using_phone = self.phone.prob > max(min(self.phone.prob_offseter.filtered_stat.M, self.settings._PHONE_MAX_OFFSET), self.settings._PHONE_MIN_OFFSET) \
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* self.settings._PHONE_THRESH2
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else:
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using_phone = self.phone.prob > self.settings._PHONE_THRESH
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if using_phone:
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distracted_types.append(DistractedType.DISTRACTED_PHONE)
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return distracted_types
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def _update_states(self, driver_state, cal_rpy, car_speed, op_engaged, standstill, demo_mode=False):
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rhd_pred = driver_state.wheelOnRightProb
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# calibrates only when there's movement and either face detected
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if car_speed > self.settings._WHEELPOS_CALIB_MIN_SPEED and (driver_state.leftDriverData.faceProb > self.settings._FACE_THRESHOLD or
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driver_state.rightDriverData.faceProb > self.settings._FACE_THRESHOLD):
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self.wheelpos.prob_offseter.push_and_update(rhd_pred)
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self.wheelpos.prob_calibrated = self.wheelpos.prob_offseter.filtered_stat.n > self.settings._WHEELPOS_FILTER_MIN_COUNT
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if self.wheelpos.prob_calibrated or demo_mode:
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self.wheel_on_right = self.wheelpos.prob_offseter.filtered_stat.M > self.settings._WHEELPOS_THRESHOLD
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else:
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self.wheel_on_right = self.wheel_on_right_default # use default/saved if calibration is unfinished
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# make sure no switching when engaged
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if op_engaged and self.wheel_on_right_last is not None and self.wheel_on_right_last != self.wheel_on_right and not demo_mode:
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self.wheel_on_right = self.wheel_on_right_last
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driver_data = driver_state.rightDriverData if self.wheel_on_right else driver_state.leftDriverData
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if not all(len(x) > 0 for x in (driver_data.faceOrientation, driver_data.facePosition,
|
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driver_data.faceOrientationStd, driver_data.facePositionStd)):
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return
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self.face_detected = driver_data.faceProb > self.settings._FACE_THRESHOLD
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self.pose.roll, self.pose.pitch, self.pose.yaw = face_orientation_from_net(driver_data.faceOrientation, driver_data.facePosition, cal_rpy)
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if self.wheel_on_right:
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self.pose.yaw *= -1
|
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self.wheel_on_right_last = self.wheel_on_right
|
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self.pose.pitch_std = driver_data.faceOrientationStd[0]
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||||
self.pose.yaw_std = driver_data.faceOrientationStd[1]
|
||||
model_std_max = max(self.pose.pitch_std, self.pose.yaw_std)
|
||||
self.pose.low_std = model_std_max < self.settings._POSESTD_THRESHOLD
|
||||
self.blink.left = driver_data.leftBlinkProb * (driver_data.leftEyeProb > self.settings._EYE_THRESHOLD) \
|
||||
* (driver_data.sunglassesProb < self.settings._SG_THRESHOLD)
|
||||
self.blink.right = driver_data.rightBlinkProb * (driver_data.rightEyeProb > self.settings._EYE_THRESHOLD) \
|
||||
* (driver_data.sunglassesProb < self.settings._SG_THRESHOLD)
|
||||
self.phone.prob = driver_data.phoneProb
|
||||
|
||||
self.distracted_types = self._get_distracted_types()
|
||||
self.driver_distracted = (DistractedType.DISTRACTED_PHONE in self.distracted_types
|
||||
or DistractedType.DISTRACTED_POSE in self.distracted_types
|
||||
or DistractedType.DISTRACTED_BLINK in self.distracted_types) \
|
||||
and driver_data.faceProb > self.settings._FACE_THRESHOLD and self.pose.low_std
|
||||
self.driver_distraction_filter.update(self.driver_distracted)
|
||||
|
||||
# update offseter
|
||||
# only update when driver is actively driving the car above a certain speed
|
||||
if self.face_detected and car_speed > self.settings._POSE_CALIB_MIN_SPEED and self.pose.low_std and (not op_engaged or not self.driver_distracted):
|
||||
self.pose.pitch_offseter.push_and_update(self.pose.pitch)
|
||||
self.pose.yaw_offseter.push_and_update(self.pose.yaw)
|
||||
self.phone.prob_offseter.push_and_update(self.phone.prob)
|
||||
|
||||
self.pose.calibrated = self.pose.pitch_offseter.filtered_stat.n > self.settings._POSE_OFFSET_MIN_COUNT and \
|
||||
self.pose.yaw_offseter.filtered_stat.n > self.settings._POSE_OFFSET_MIN_COUNT
|
||||
self.phone.prob_calibrated = self.phone.prob_offseter.filtered_stat.n > self.settings._POSE_OFFSET_MIN_COUNT
|
||||
|
||||
if self.face_detected and not self.driver_distracted:
|
||||
if model_std_max > self.settings._DCAM_UNCERTAIN_ALERT_THRESHOLD:
|
||||
if not standstill:
|
||||
self.dcam_uncertain_cnt += 1
|
||||
self.dcam_reset_cnt = 0
|
||||
else:
|
||||
self.dcam_reset_cnt += 1
|
||||
if self.dcam_reset_cnt > self.settings._DCAM_UNCERTAIN_RESET_COUNT:
|
||||
self.dcam_uncertain_cnt = 0
|
||||
|
||||
self.is_model_uncertain = self.hi_stds > self.settings._HI_STD_FALLBACK_TIME
|
||||
self._set_timers(self.face_detected and not self.is_model_uncertain)
|
||||
if self.face_detected and not self.pose.low_std and not self.driver_distracted:
|
||||
self.hi_stds += 1
|
||||
elif self.face_detected and self.pose.low_std:
|
||||
self.hi_stds = 0
|
||||
|
||||
def _update_events(self, driver_engaged, op_engaged, standstill, wrong_gear, car_speed):
|
||||
self._reset_events()
|
||||
# Block engaging until ignition cycle after max number or time of distractions
|
||||
if self.terminal_alert_cnt >= self.settings._MAX_TERMINAL_ALERTS or \
|
||||
self.terminal_time >= self.settings._MAX_TERMINAL_DURATION:
|
||||
if not self.too_distracted:
|
||||
self.params.put_bool_nonblocking("DriverTooDistracted", True)
|
||||
self.too_distracted = True
|
||||
|
||||
# Always-on distraction lockout is temporary
|
||||
if self.too_distracted or (self.always_on and self.awareness <= self.threshold_prompt):
|
||||
self.current_events.add(EventName.tooDistracted)
|
||||
|
||||
always_on_valid = self.always_on and not wrong_gear
|
||||
if (driver_engaged and self.awareness > 0 and not self.active_monitoring_mode) or \
|
||||
(not always_on_valid and not op_engaged) or \
|
||||
(always_on_valid and not op_engaged and self.awareness <= 0):
|
||||
# always reset on disengage with normal mode; disengage resets only on red if always on
|
||||
self._reset_awareness()
|
||||
return
|
||||
|
||||
driver_attentive = self.driver_distraction_filter.x < 0.37
|
||||
awareness_prev = self.awareness
|
||||
|
||||
if (driver_attentive and self.face_detected and self.pose.low_std and self.awareness > 0):
|
||||
if driver_engaged:
|
||||
self._reset_awareness()
|
||||
return
|
||||
# only restore awareness when paying attention and alert is not red
|
||||
self.awareness = min(self.awareness + ((self.settings._RECOVERY_FACTOR_MAX-self.settings._RECOVERY_FACTOR_MIN)*
|
||||
(1.-self.awareness)+self.settings._RECOVERY_FACTOR_MIN)*self.step_change, 1.)
|
||||
if self.awareness == 1.:
|
||||
self.awareness_passive = min(self.awareness_passive + self.step_change, 1.)
|
||||
# don't display alert banner when awareness is recovering and has cleared orange
|
||||
if self.awareness > self.threshold_prompt:
|
||||
return
|
||||
|
||||
_reaching_audible = self.awareness - self.step_change <= self.threshold_prompt
|
||||
_reaching_terminal = self.awareness - self.step_change <= 0
|
||||
standstill_orange_exemption = standstill and _reaching_audible
|
||||
always_on_red_exemption = always_on_valid and not op_engaged and _reaching_terminal
|
||||
always_on_lowspeed_exemption = always_on_valid and not op_engaged and car_speed < self.settings._ALWAYS_ON_ALERT_MIN_SPEED
|
||||
|
||||
certainly_distracted = self.driver_distraction_filter.x > 0.63 and self.driver_distracted and self.face_detected
|
||||
maybe_distracted = self.hi_stds > self.settings._HI_STD_FALLBACK_TIME or not self.face_detected
|
||||
|
||||
if certainly_distracted or maybe_distracted:
|
||||
# should always be counting if distracted unless at standstill (lowspeed for always-on) and reaching orange
|
||||
# also will not be reaching 0 if DM is active when not engaged
|
||||
if not (standstill_orange_exemption or always_on_red_exemption or (always_on_lowspeed_exemption and _reaching_audible)):
|
||||
self.awareness = max(self.awareness - self.step_change, -0.1)
|
||||
|
||||
alert = None
|
||||
if self.awareness <= 0.:
|
||||
# terminal red alert: disengagement required
|
||||
alert = EventName.driverDistracted if self.active_monitoring_mode else EventName.driverUnresponsive
|
||||
self.terminal_time += 1
|
||||
if awareness_prev > 0.:
|
||||
self.terminal_alert_cnt += 1
|
||||
elif self.awareness <= self.threshold_prompt:
|
||||
# prompt orange alert
|
||||
alert = EventName.promptDriverDistracted if self.active_monitoring_mode else EventName.promptDriverUnresponsive
|
||||
elif self.awareness <= self.threshold_pre and not always_on_lowspeed_exemption:
|
||||
# pre green alert
|
||||
alert = EventName.preDriverDistracted if self.active_monitoring_mode else EventName.preDriverUnresponsive
|
||||
|
||||
if alert is not None:
|
||||
self.current_events.add(alert)
|
||||
|
||||
def get_state_packet(self, valid=True):
|
||||
# build driverMonitoringState packet
|
||||
dat = messaging.new_message('driverMonitoringState', valid=valid)
|
||||
dat.driverMonitoringState = {
|
||||
"events": self.current_events.to_msg(),
|
||||
"faceDetected": self.face_detected,
|
||||
"isDistracted": self.driver_distracted,
|
||||
"distractedType": sum(self.distracted_types),
|
||||
"awarenessStatus": self.awareness,
|
||||
"posePitchOffset": self.pose.pitch_offseter.filtered_stat.mean(),
|
||||
"posePitchValidCount": self.pose.pitch_offseter.filtered_stat.n,
|
||||
"poseYawOffset": self.pose.yaw_offseter.filtered_stat.mean(),
|
||||
"poseYawValidCount": self.pose.yaw_offseter.filtered_stat.n,
|
||||
"phoneProbOffset": self.phone.prob_offseter.filtered_stat.mean(),
|
||||
"phoneProbValidCount": self.phone.prob_offseter.filtered_stat.n,
|
||||
"stepChange": self.step_change,
|
||||
"awarenessActive": self.awareness_active,
|
||||
"awarenessPassive": self.awareness_passive,
|
||||
"isLowStd": self.pose.low_std,
|
||||
"hiStdCount": self.hi_stds,
|
||||
"isActiveMode": self.active_monitoring_mode,
|
||||
"isRHD": self.wheel_on_right,
|
||||
"uncertainCount": self.dcam_uncertain_cnt,
|
||||
}
|
||||
return dat
|
||||
|
||||
def run_step(self, sm, demo=False):
|
||||
if demo:
|
||||
highway_speed = 30
|
||||
enabled = True
|
||||
wrong_gear = False
|
||||
standstill = False
|
||||
driver_engaged = False
|
||||
brake_disengage_prob = 1.0
|
||||
rpyCalib = [0., 0., 0.]
|
||||
else:
|
||||
highway_speed = sm['carState'].vEgo
|
||||
enabled = sm['selfdriveState'].enabled or sm['carControl'].latActive
|
||||
wrong_gear = sm['carState'].gearShifter not in (car.CarState.GearShifter.drive, car.CarState.GearShifter.low)
|
||||
standstill = sm['carState'].standstill
|
||||
driver_engaged = sm['carState'].steeringPressed or sm['carState'].gasPressed
|
||||
brake_disengage_prob = sm['modelV2'].meta.disengagePredictions.brakeDisengageProbs[0] # brake disengage prob in next 2s
|
||||
calib_rpy = get_calibrated_rpy(sm['liveCalibration'])
|
||||
rpyCalib = calib_rpy.tolist() if calib_rpy is not None else [0., 0., 0.]
|
||||
self._set_policy(
|
||||
brake_disengage_prob=brake_disengage_prob,
|
||||
car_speed=highway_speed,
|
||||
)
|
||||
|
||||
# Parse data from dmonitoringmodeld
|
||||
self._update_states(
|
||||
driver_state=sm['driverStateV2'],
|
||||
cal_rpy=rpyCalib,
|
||||
car_speed=highway_speed,
|
||||
op_engaged=enabled,
|
||||
standstill=standstill,
|
||||
demo_mode=demo,
|
||||
)
|
||||
|
||||
# Update distraction events
|
||||
self._update_events(
|
||||
driver_engaged=driver_engaged,
|
||||
op_engaged=enabled,
|
||||
standstill=standstill,
|
||||
wrong_gear=wrong_gear,
|
||||
car_speed=highway_speed
|
||||
)
|
||||
467
selfdrive/monitoring/policy.py
Normal file
467
selfdrive/monitoring/policy.py
Normal file
@@ -0,0 +1,467 @@
|
||||
from collections import defaultdict
|
||||
from math import atan2, radians
|
||||
import numpy as np
|
||||
|
||||
from cereal import car, log
|
||||
import cereal.messaging as messaging
|
||||
from openpilot.common.realtime import DT_DMON
|
||||
from openpilot.common.filter_simple import FirstOrderFilter
|
||||
from openpilot.common.params import Params
|
||||
from openpilot.common.stat_live import RunningStatFilter
|
||||
from openpilot.common.transformations.camera import DEVICE_CAMERAS
|
||||
|
||||
AlertLevel = log.DriverMonitoringState.AlertLevel
|
||||
MonitoringPolicy = log.DriverMonitoringState.MonitoringPolicy
|
||||
|
||||
def to_percent(v):
|
||||
return int(min(max(v * 100., 0.), 100.))
|
||||
|
||||
# ******************************************************************************************
|
||||
# NOTE: To fork maintainers.
|
||||
# Disabling or nerfing safety features will get you and your users banned from our servers.
|
||||
# We recommend that you do not change these numbers from the defaults.
|
||||
# ******************************************************************************************
|
||||
|
||||
class DRIVER_MONITOR_SETTINGS:
|
||||
def __init__(self):
|
||||
# https://eur-lex.europa.eu/legal-content/EN/TXT/PDF/?uri=OJ:L_202501899
|
||||
self._ALERT_MIN_SPEED = 2.8 # 10 km/h
|
||||
|
||||
self._WHEELTOUCH_POLICY_ALERT_1_TIMEOUT = 5.
|
||||
self._WHEELTOUCH_POLICY_ALERT_2_TIMEOUT = 15.
|
||||
self._WHEELTOUCH_POLICY_ALERT_3_TIMEOUT = 25.
|
||||
self._VISION_POLICY_ALERT_1_TIMEOUT = 5.
|
||||
self._VISION_POLICY_ALERT_2_TIMEOUT = 8.
|
||||
self._VISION_POLICY_ALERT_3_TIMEOUT = 13.
|
||||
|
||||
# no response = alert_3 sustained for certain amount of time
|
||||
self._NO_RESPONSE_TIMEOUT = 5.
|
||||
|
||||
# lockout specs
|
||||
self._MAX_ALERT_3 = 2
|
||||
self._MAX_NO_RESPONSE = 1
|
||||
self._LOCKOUT_TIMES = [int(60 * n_min / DT_DMON) for n_min in [1, 5, 15, 30]]
|
||||
|
||||
self._TIMEOUT_RECOVERY_FACTOR_MAX = 5.
|
||||
self._TIMEOUT_RECOVERY_FACTOR_MIN = 1.25
|
||||
|
||||
self._FACE_THRESHOLD = 0.7
|
||||
self._EYE_THRESHOLD = 0.65
|
||||
self._SG_THRESHOLD = 0.9
|
||||
self._BLINK_THRESHOLD = 0.865
|
||||
self._PHONE_THRESH = 0.5
|
||||
self._POSE_PITCH_THRESHOLD = 0.3133
|
||||
self._POSE_PITCH_THRESHOLD_SLACK = 0.3237
|
||||
self._POSE_PITCH_THRESHOLD_STRICT = self._POSE_PITCH_THRESHOLD
|
||||
self._POSE_YAW_THRESHOLD = 0.4020
|
||||
self._POSE_YAW_THRESHOLD_SLACK = 0.5042
|
||||
self._POSE_YAW_THRESHOLD_STRICT = self._POSE_YAW_THRESHOLD
|
||||
self._POSE_YAW_MIN_STEER_DEG = 30
|
||||
self._POSE_YAW_STEER_FACTOR = 0.15
|
||||
self._POSE_YAW_STEER_MAX_OFFSET = 0.3927
|
||||
self._PITCH_NATURAL_OFFSET = 0.011 # initial value before offset is learned
|
||||
self._PITCH_NATURAL_THRESHOLD = 0.449
|
||||
self._YAW_NATURAL_OFFSET = 0.075 # initial value before offset is learned
|
||||
self._PITCH_NATURAL_VAR = 3*0.01
|
||||
self._YAW_NATURAL_VAR = 3*0.05
|
||||
self._PITCH_MAX_OFFSET = 0.124
|
||||
self._PITCH_MIN_OFFSET = -0.0881
|
||||
self._YAW_MAX_OFFSET = 0.289
|
||||
self._YAW_MIN_OFFSET = -0.0246
|
||||
|
||||
self._DCAM_UNCERTAIN_ALERT_THRESHOLD = 0.1
|
||||
self._DCAM_UNCERTAIN_ALERT_COUNT = int(60 / DT_DMON)
|
||||
self._DCAM_UNCERTAIN_RESET_COUNT = int(2 / DT_DMON)
|
||||
self._HI_STD_THRESHOLD = 0.3
|
||||
self._HI_STD_FALLBACK_TIME = int(10 / DT_DMON) # fall back to wheel touch if model is uncertain for 10s
|
||||
self._DISTRACTED_FILTER_TS = 0.25 # 0.6Hz
|
||||
|
||||
self._POSE_CALIB_MIN_SPEED = 13 # 30 mph
|
||||
self._POSE_OFFSET_MIN_COUNT = int(60 / DT_DMON) # valid data counts before calibration completes, 1min cumulative
|
||||
self._POSE_OFFSET_MAX_COUNT = int(360 / DT_DMON) # stop deweighting new data after 6 min, aka "short term memory"
|
||||
self._WHEELPOS_CALIB_MIN_SPEED = 11
|
||||
self._WHEELPOS_THRESHOLD = 0.5
|
||||
self._WHEELPOS_FILTER_MIN_COUNT = int(15 / DT_DMON) # allow 15 seconds to converge wheel side
|
||||
self._WHEELPOS_DATA_AVG = 0.03
|
||||
self._WHEELPOS_DATA_VAR = 3*5.5e-5
|
||||
self._WHEELPOS_MAX_COUNT = -1
|
||||
|
||||
class DriverPose:
|
||||
def __init__(self, settings):
|
||||
pitch_filter_raw_priors = (settings._PITCH_NATURAL_OFFSET, settings._PITCH_NATURAL_VAR, 2)
|
||||
yaw_filter_raw_priors = (settings._YAW_NATURAL_OFFSET, settings._YAW_NATURAL_VAR, 2)
|
||||
self.yaw = 0.
|
||||
self.pitch = 0.
|
||||
self.pitch_offsetter = RunningStatFilter(raw_priors=pitch_filter_raw_priors, max_trackable=settings._POSE_OFFSET_MAX_COUNT)
|
||||
self.yaw_offsetter = RunningStatFilter(raw_priors=yaw_filter_raw_priors, max_trackable=settings._POSE_OFFSET_MAX_COUNT)
|
||||
self.calibrated = False
|
||||
self.low_std = True
|
||||
self.cfactor_pitch = 1.
|
||||
self.cfactor_yaw = 1.
|
||||
self.steer_yaw_offset = 0.
|
||||
|
||||
class DriverBlink:
|
||||
def __init__(self):
|
||||
self.left = 0.
|
||||
self.right = 0.
|
||||
|
||||
# model output refers to center of undistorted+leveled image
|
||||
ref_undistorted_cam = DEVICE_CAMERAS[("tici", "ar0231")].dcam
|
||||
dcam_undistorted_FL = 598.0
|
||||
dcam_undistorted_W, dcam_undistorted_H = (ref_undistorted_cam.width, ref_undistorted_cam.height)
|
||||
|
||||
def face_orientation_from_model(orient_model, pos_model, rpy_calib):
|
||||
pitch_model = orient_model[0]
|
||||
yaw_model = orient_model[1]
|
||||
|
||||
face_pixel_position = ((pos_model[0]+0.5)*dcam_undistorted_W, (pos_model[1]+0.5)*dcam_undistorted_H)
|
||||
yaw_focal_angle = atan2(face_pixel_position[0] - dcam_undistorted_W//2, dcam_undistorted_FL)
|
||||
pitch_focal_angle = atan2(face_pixel_position[1] - dcam_undistorted_H//2, dcam_undistorted_FL)
|
||||
|
||||
pitch = pitch_model + pitch_focal_angle
|
||||
yaw = -yaw_model + yaw_focal_angle
|
||||
|
||||
pitch -= rpy_calib[1]
|
||||
yaw -= rpy_calib[2]
|
||||
return pitch, yaw
|
||||
|
||||
|
||||
class DriverMonitoring:
|
||||
def __init__(self, rhd_saved=False, settings=None, always_on=False):
|
||||
# init policy settings
|
||||
self.settings = settings if settings is not None else DRIVER_MONITOR_SETTINGS()
|
||||
|
||||
# init driver status
|
||||
wheelpos_filter_raw_priors = (self.settings._WHEELPOS_DATA_AVG, self.settings._WHEELPOS_DATA_VAR, 2)
|
||||
self.wheelpos_offsetter = RunningStatFilter(raw_priors=wheelpos_filter_raw_priors, max_trackable=self.settings._WHEELPOS_MAX_COUNT)
|
||||
self.pose = DriverPose(settings=self.settings)
|
||||
self.blink = DriverBlink()
|
||||
self.phone_prob = 0.
|
||||
|
||||
self.alert_level = AlertLevel.none
|
||||
self.always_on = always_on
|
||||
self.distracted_types = defaultdict(bool)
|
||||
self.driver_distracted = False
|
||||
self.driver_distraction_filter = FirstOrderFilter(0., self.settings._DISTRACTED_FILTER_TS, DT_DMON)
|
||||
self.wheel_on_right = False
|
||||
self.wheel_on_right_last = None
|
||||
self.wheel_on_right_default = rhd_saved
|
||||
self.face_detected = False
|
||||
self.alert_3_cnt = 0
|
||||
self.cnt_since_alert_3 = 0
|
||||
self.no_response_timeout = int(self.settings._NO_RESPONSE_TIMEOUT / DT_DMON)
|
||||
self.no_response_cnt = 0
|
||||
self.lockout_active = Params().get_bool("DriverTooDistracted")
|
||||
self.lockout_count = Params().get("DriverLockoutCount") or 0
|
||||
self.lockout_duration = self.settings._LOCKOUT_TIMES[min(max(self.lockout_count - 1, 0), len(self.settings._LOCKOUT_TIMES) - 1)]
|
||||
self.lockout_time_elapsed = 0
|
||||
self.step_change = 0.
|
||||
self.active_policy = MonitoringPolicy.vision
|
||||
self.driver_interacting = False
|
||||
self.is_model_uncertain = False
|
||||
self.hi_stds = 0
|
||||
self.model_std_max = 0.
|
||||
self.threshold_alert_1 = 0.
|
||||
self.threshold_alert_2 = 0.
|
||||
self.dcam_uncertain_cnt = 0
|
||||
self.dcam_reset_cnt = 0
|
||||
|
||||
self._reset_awareness()
|
||||
self._set_policy(MonitoringPolicy.vision)
|
||||
|
||||
def _reset_awareness(self):
|
||||
self.awareness = 1.
|
||||
self.last_vision_awareness = 1.
|
||||
self.last_wheeltouch_awareness = 1.
|
||||
|
||||
def _set_policy(self, target_policy):
|
||||
if self.active_policy == MonitoringPolicy.vision and self.awareness <= self.threshold_alert_2:
|
||||
if target_policy == MonitoringPolicy.vision:
|
||||
self.step_change = DT_DMON / self.settings._VISION_POLICY_ALERT_3_TIMEOUT
|
||||
else:
|
||||
self.step_change = 0.
|
||||
return # no exploit after orange alert
|
||||
elif self.awareness <= 0.:
|
||||
return
|
||||
|
||||
if target_policy == MonitoringPolicy.vision:
|
||||
# when falling back from passive mode to active mode, reset awareness to avoid false alert
|
||||
if self.active_policy != MonitoringPolicy.vision:
|
||||
self.last_wheeltouch_awareness = self.awareness
|
||||
self.awareness = self.last_vision_awareness
|
||||
|
||||
self.threshold_alert_1 = 1. - self.settings._VISION_POLICY_ALERT_1_TIMEOUT / self.settings._VISION_POLICY_ALERT_3_TIMEOUT
|
||||
self.threshold_alert_2 = 1. - self.settings._VISION_POLICY_ALERT_2_TIMEOUT / self.settings._VISION_POLICY_ALERT_3_TIMEOUT
|
||||
self.step_change = DT_DMON / self.settings._VISION_POLICY_ALERT_3_TIMEOUT
|
||||
self.active_policy = MonitoringPolicy.vision
|
||||
else:
|
||||
if self.active_policy == MonitoringPolicy.vision:
|
||||
self.last_vision_awareness = self.awareness
|
||||
self.awareness = self.last_wheeltouch_awareness
|
||||
|
||||
self.threshold_alert_1 = 1. - self.settings._WHEELTOUCH_POLICY_ALERT_1_TIMEOUT / self.settings._WHEELTOUCH_POLICY_ALERT_3_TIMEOUT
|
||||
self.threshold_alert_2 = 1. - self.settings._WHEELTOUCH_POLICY_ALERT_2_TIMEOUT / self.settings._WHEELTOUCH_POLICY_ALERT_3_TIMEOUT
|
||||
self.step_change = DT_DMON / self.settings._WHEELTOUCH_POLICY_ALERT_3_TIMEOUT
|
||||
self.active_policy = MonitoringPolicy.wheeltouch
|
||||
|
||||
def _set_pose_strictness(self, brake_disengage_prob, car_speed):
|
||||
bp = brake_disengage_prob
|
||||
k1 = max(-0.00156*((car_speed-16)**2)+0.6, 0.2)
|
||||
bp_normal = max(min(bp / k1, 0.5),0)
|
||||
self.pose.cfactor_pitch = np.interp(bp_normal, [0, 0.5],
|
||||
[self.settings._POSE_PITCH_THRESHOLD_SLACK,
|
||||
self.settings._POSE_PITCH_THRESHOLD_STRICT]) / self.settings._POSE_PITCH_THRESHOLD
|
||||
self.pose.cfactor_yaw = np.interp(bp_normal, [0, 0.5],
|
||||
[self.settings._POSE_YAW_THRESHOLD_SLACK,
|
||||
self.settings._POSE_YAW_THRESHOLD_STRICT]) / self.settings._POSE_YAW_THRESHOLD
|
||||
|
||||
def _get_distracted_types(self):
|
||||
self.distracted_types = defaultdict(bool)
|
||||
|
||||
if not self.pose.calibrated:
|
||||
pitch_error = self.pose.pitch - self.settings._PITCH_NATURAL_OFFSET
|
||||
yaw_error = self.pose.yaw - self.settings._YAW_NATURAL_OFFSET
|
||||
else:
|
||||
pitch_error = self.pose.pitch - min(max(self.pose.pitch_offsetter.filtered_stat.mean(),
|
||||
self.settings._PITCH_MIN_OFFSET), self.settings._PITCH_MAX_OFFSET)
|
||||
yaw_error = self.pose.yaw - min(max(self.pose.yaw_offsetter.filtered_stat.mean(),
|
||||
self.settings._YAW_MIN_OFFSET), self.settings._YAW_MAX_OFFSET)
|
||||
pitch_error = 0 if pitch_error > 0 else abs(pitch_error) # no positive pitch limit
|
||||
|
||||
if yaw_error * self.pose.steer_yaw_offset > 0: # unidirectional
|
||||
yaw_error = max(abs(yaw_error) - min(abs(self.pose.steer_yaw_offset), self.settings._POSE_YAW_STEER_MAX_OFFSET), 0.)
|
||||
else:
|
||||
yaw_error = abs(yaw_error)
|
||||
|
||||
pitch_threshold = self.settings._POSE_PITCH_THRESHOLD * self.pose.cfactor_pitch if self.pose.calibrated else self.settings._PITCH_NATURAL_THRESHOLD
|
||||
yaw_threshold = self.settings._POSE_YAW_THRESHOLD * self.pose.cfactor_yaw
|
||||
|
||||
self.distracted_types['pose'] = bool((pitch_error > pitch_threshold) or (yaw_error > yaw_threshold))
|
||||
self.distracted_types['eye'] = bool((self.blink.left + self.blink.right)*0.5 > self.settings._BLINK_THRESHOLD)
|
||||
self.distracted_types['phone'] = bool(self.phone_prob > self.settings._PHONE_THRESH)
|
||||
|
||||
def _update_states(self, driver_state, cal_rpy, car_speed, op_engaged, lowspeed, demo_mode=False, steering_angle_deg=0.):
|
||||
rhd_pred = driver_state.wheelOnRightProb
|
||||
# calibrates only when there's movement and either face detected
|
||||
if car_speed > self.settings._WHEELPOS_CALIB_MIN_SPEED and (driver_state.leftDriverData.faceProb > self.settings._FACE_THRESHOLD or
|
||||
driver_state.rightDriverData.faceProb > self.settings._FACE_THRESHOLD):
|
||||
self.wheelpos_offsetter.push_and_update(rhd_pred)
|
||||
|
||||
wheelpos_calibrated = self.wheelpos_offsetter.filtered_stat.n >= self.settings._WHEELPOS_FILTER_MIN_COUNT
|
||||
|
||||
if wheelpos_calibrated or demo_mode:
|
||||
self.wheel_on_right = self.wheelpos_offsetter.filtered_stat.M > self.settings._WHEELPOS_THRESHOLD
|
||||
else:
|
||||
self.wheel_on_right = self.wheel_on_right_default # use default/saved if calibration is unfinished
|
||||
# make sure no switching when engaged
|
||||
if op_engaged and self.wheel_on_right_last is not None and self.wheel_on_right_last != self.wheel_on_right and not demo_mode:
|
||||
self.wheel_on_right = self.wheel_on_right_last
|
||||
driver_data = driver_state.rightDriverData if self.wheel_on_right else driver_state.leftDriverData
|
||||
if not all(len(x) > 0 for x in (driver_data.faceOrientation, driver_data.facePosition,
|
||||
driver_data.faceOrientationStd, driver_data.facePositionStd)):
|
||||
return
|
||||
|
||||
self.face_detected = driver_data.faceProb > self.settings._FACE_THRESHOLD
|
||||
self.pose.pitch, self.pose.yaw = face_orientation_from_model(driver_data.faceOrientation, driver_data.facePosition, cal_rpy)
|
||||
steer_d = max(abs(steering_angle_deg) - self.settings._POSE_YAW_MIN_STEER_DEG, 0.)
|
||||
self.pose.steer_yaw_offset = radians(steer_d) * -np.sign(steering_angle_deg) * self.settings._POSE_YAW_STEER_FACTOR
|
||||
if self.wheel_on_right:
|
||||
self.pose.yaw *= -1
|
||||
self.pose.steer_yaw_offset *= -1
|
||||
self.wheel_on_right_last = self.wheel_on_right
|
||||
self.model_std_max = max(driver_data.faceOrientationStd[0], driver_data.faceOrientationStd[1])
|
||||
self.pose.low_std = self.model_std_max < self.settings._HI_STD_THRESHOLD
|
||||
self.blink.left = driver_data.leftBlinkProb * (driver_data.leftEyeProb > self.settings._EYE_THRESHOLD) \
|
||||
* (driver_data.sunglassesProb < self.settings._SG_THRESHOLD)
|
||||
self.blink.right = driver_data.rightBlinkProb * (driver_data.rightEyeProb > self.settings._EYE_THRESHOLD) \
|
||||
* (driver_data.sunglassesProb < self.settings._SG_THRESHOLD)
|
||||
self.phone_prob = driver_data.phoneProb
|
||||
|
||||
self._get_distracted_types()
|
||||
self.driver_distracted = any(self.distracted_types.values()) and driver_data.faceProb > self.settings._FACE_THRESHOLD and self.pose.low_std
|
||||
self.driver_distraction_filter.update(self.driver_distracted)
|
||||
|
||||
# only update offsetter when driver is actively driving the car above a certain speed
|
||||
if self.face_detected and car_speed > self.settings._POSE_CALIB_MIN_SPEED and self.pose.low_std and (not op_engaged or not self.driver_distracted):
|
||||
self.pose.pitch_offsetter.push_and_update(self.pose.pitch)
|
||||
self.pose.yaw_offsetter.push_and_update(self.pose.yaw)
|
||||
|
||||
self.pose.calibrated = self.pose.pitch_offsetter.filtered_stat.n >= self.settings._POSE_OFFSET_MIN_COUNT and \
|
||||
self.pose.yaw_offsetter.filtered_stat.n >= self.settings._POSE_OFFSET_MIN_COUNT
|
||||
|
||||
if self.face_detected and not self.driver_distracted:
|
||||
dcam_uncertain = self.model_std_max > self.settings._DCAM_UNCERTAIN_ALERT_THRESHOLD
|
||||
if dcam_uncertain and not lowspeed:
|
||||
self.dcam_uncertain_cnt += 1
|
||||
self.dcam_reset_cnt = 0
|
||||
else:
|
||||
self.dcam_reset_cnt += 1
|
||||
if self.dcam_reset_cnt > self.settings._DCAM_UNCERTAIN_RESET_COUNT:
|
||||
self.dcam_uncertain_cnt = 0
|
||||
|
||||
self.is_model_uncertain = self.hi_stds >= self.settings._HI_STD_FALLBACK_TIME
|
||||
self._set_policy(MonitoringPolicy.vision if self.face_detected and not self.is_model_uncertain else MonitoringPolicy.wheeltouch)
|
||||
if self.face_detected and not self.pose.low_std and not self.driver_distracted:
|
||||
self.hi_stds += 1
|
||||
elif self.face_detected and self.pose.low_std:
|
||||
self.hi_stds = 0
|
||||
|
||||
def _update_events(self, driver_engaged, op_engaged, lowspeed, wrong_gear):
|
||||
self.alert_level = AlertLevel.none
|
||||
self.driver_interacting = driver_engaged
|
||||
|
||||
if self.alert_3_cnt >= self.settings._MAX_ALERT_3 or self.no_response_cnt >= self.settings._MAX_NO_RESPONSE:
|
||||
if not self.lockout_active:
|
||||
self.lockout_count += 1
|
||||
self.lockout_duration = self.settings._LOCKOUT_TIMES[min(self.lockout_count - 1, len(self.settings._LOCKOUT_TIMES) - 1)]
|
||||
Params().put("DriverLockoutCount", self.lockout_count)
|
||||
self.lockout_active = True
|
||||
|
||||
if self.lockout_active:
|
||||
self.lockout_time_elapsed += 1
|
||||
if self.lockout_time_elapsed > self.lockout_duration:
|
||||
self.lockout_active = False
|
||||
self.alert_3_cnt = 0
|
||||
self.cnt_since_alert_3 = 0
|
||||
self.no_response_cnt = 0
|
||||
self.lockout_time_elapsed = 0
|
||||
|
||||
always_on_valid = self.always_on and not wrong_gear
|
||||
if (self.driver_interacting and self.awareness > 0 and self.active_policy == MonitoringPolicy.wheeltouch) or \
|
||||
(not always_on_valid and not op_engaged) or \
|
||||
(always_on_valid and not op_engaged and self.awareness <= 0):
|
||||
# always reset on disengage with normal mode; disengage resets only on red if always on
|
||||
self._reset_awareness()
|
||||
return
|
||||
|
||||
awareness_prev = self.awareness
|
||||
_reaching_alert_1 = self.awareness - self.step_change <= self.threshold_alert_1
|
||||
_reaching_alert_3 = self.awareness - self.step_change <= 0
|
||||
lowspeed_exemption = lowspeed and _reaching_alert_1
|
||||
always_on_exemption = always_on_valid and not op_engaged and _reaching_alert_3
|
||||
|
||||
if self.awareness > 0 and \
|
||||
((self.driver_distraction_filter.x < 0.37 and self.face_detected and self.pose.low_std) or lowspeed_exemption):
|
||||
if self.driver_interacting:
|
||||
self._reset_awareness()
|
||||
return
|
||||
# only restore awareness when paying attention and alert is not red
|
||||
self.awareness = min(self.awareness + ((self.settings._TIMEOUT_RECOVERY_FACTOR_MAX-self.settings._TIMEOUT_RECOVERY_FACTOR_MIN)*
|
||||
(1.-self.awareness)+self.settings._TIMEOUT_RECOVERY_FACTOR_MIN)*self.step_change, 1.)
|
||||
if self.awareness == 1.:
|
||||
self.last_wheeltouch_awareness = min(self.last_wheeltouch_awareness + self.step_change, 1.)
|
||||
# don't display alert banner when awareness is recovering and has cleared orange
|
||||
if self.awareness > self.threshold_alert_2:
|
||||
return
|
||||
|
||||
certainly_distracted = self.driver_distraction_filter.x > 0.63 and self.driver_distracted and self.face_detected
|
||||
maybe_distracted = self.is_model_uncertain or not self.face_detected
|
||||
|
||||
if certainly_distracted or maybe_distracted:
|
||||
# should always be counting if distracted unless at low speed and reaching green
|
||||
# also will not be reaching 0 if DM is active when not engaged
|
||||
if not (lowspeed_exemption or always_on_exemption):
|
||||
self.awareness = max(self.awareness - self.step_change, -0.1)
|
||||
|
||||
if self.awareness <= 0.:
|
||||
# terminal alert: disengagement required
|
||||
self.alert_level = AlertLevel.three
|
||||
if awareness_prev > 0.:
|
||||
self.alert_3_cnt += 1
|
||||
self.cnt_since_alert_3 = 0
|
||||
else:
|
||||
self.cnt_since_alert_3 += 1
|
||||
if self.cnt_since_alert_3 == self.no_response_timeout:
|
||||
self.no_response_cnt += 1
|
||||
else:
|
||||
if self.awareness <= self.threshold_alert_2:
|
||||
self.alert_level = AlertLevel.two
|
||||
elif self.awareness <= self.threshold_alert_1:
|
||||
self.alert_level = AlertLevel.one
|
||||
|
||||
def get_state_packet(self, valid=True):
|
||||
# build driverMonitoringState packet
|
||||
dat = messaging.new_message('driverMonitoringState', valid=valid)
|
||||
dm = dat.driverMonitoringState
|
||||
|
||||
dm.lockout = self.lockout_active
|
||||
dm.lockoutCount = self.lockout_count
|
||||
if self.lockout_active:
|
||||
dm.lockoutMinutesRemaining = max(1, round((self.lockout_duration - self.lockout_time_elapsed) * DT_DMON / 60.))
|
||||
dm.alert3Count = self.alert_3_cnt
|
||||
dm.noResponseCount = self.no_response_cnt
|
||||
dm.noResponseForceDecel = self.alert_level == AlertLevel.three and self.cnt_since_alert_3 >= self.no_response_timeout
|
||||
dm.alwaysOn = self.always_on
|
||||
dm.alwaysOnLockout = self.always_on and self.awareness <= self.threshold_alert_2
|
||||
dm.alertLevel = self.alert_level
|
||||
dm.activePolicy = self.active_policy
|
||||
dm.isRHD = self.wheel_on_right
|
||||
dm.rhdCalibration.calibratedPercent = to_percent(self.wheelpos_offsetter.filtered_stat.n / self.settings._WHEELPOS_FILTER_MIN_COUNT)
|
||||
dm.rhdCalibration.offset = self.wheelpos_offsetter.filtered_stat.M
|
||||
|
||||
dm.visionPolicyState.awarenessPercent = to_percent(self.last_vision_awareness if self.active_policy != MonitoringPolicy.vision else self.awareness)
|
||||
dm.visionPolicyState.awarenessStep = self.step_change if self.active_policy == MonitoringPolicy.vision else 0.
|
||||
dm.visionPolicyState.isDistracted = self.driver_distracted
|
||||
dm.visionPolicyState.distractedTypes.pose = self.distracted_types['pose']
|
||||
dm.visionPolicyState.distractedTypes.eye = self.distracted_types['eye']
|
||||
dm.visionPolicyState.distractedTypes.phone = self.distracted_types['phone']
|
||||
dm.visionPolicyState.faceDetected = self.face_detected
|
||||
dm.visionPolicyState.pose.pitch = self.pose.pitch
|
||||
dm.visionPolicyState.pose.yaw = self.pose.yaw
|
||||
dm.visionPolicyState.pose.calibrated = self.pose.calibrated
|
||||
dm.visionPolicyState.pose.pitchCalib.calibratedPercent = to_percent(self.pose.pitch_offsetter.filtered_stat.n / self.settings._POSE_OFFSET_MIN_COUNT)
|
||||
dm.visionPolicyState.pose.pitchCalib.offset = self.pose.pitch_offsetter.filtered_stat.M
|
||||
dm.visionPolicyState.pose.yawCalib.calibratedPercent = to_percent(self.pose.yaw_offsetter.filtered_stat.n / self.settings._POSE_OFFSET_MIN_COUNT)
|
||||
dm.visionPolicyState.pose.yawCalib.offset = self.pose.yaw_offsetter.filtered_stat.M
|
||||
dm.visionPolicyState.pose.uncertainty = self.model_std_max
|
||||
dm.visionPolicyState.wheeltouchFallbackPercent = to_percent(self.hi_stds / self.settings._HI_STD_FALLBACK_TIME)
|
||||
dm.visionPolicyState.uncertainOffroadAlertPercent = to_percent(self.dcam_uncertain_cnt / self.settings._DCAM_UNCERTAIN_ALERT_COUNT)
|
||||
|
||||
dm.wheeltouchPolicyState.awarenessPercent = to_percent(self.last_wheeltouch_awareness if self.active_policy == MonitoringPolicy.vision else self.awareness)
|
||||
dm.wheeltouchPolicyState.awarenessStep = 0. if self.active_policy == MonitoringPolicy.vision else self.step_change
|
||||
dm.wheeltouchPolicyState.driverInteracting = self.driver_interacting
|
||||
return dat
|
||||
|
||||
def run_step(self, sm, demo=False):
|
||||
if demo:
|
||||
car_speed = 30
|
||||
enabled = True
|
||||
wrong_gear = False
|
||||
lowspeed = False
|
||||
driver_engaged = False
|
||||
brake_disengage_prob = 1.0
|
||||
steering_angle_deg = 0.0
|
||||
rpyCalib = [0., 0., 0.]
|
||||
else:
|
||||
car_speed = sm['carState'].vEgo
|
||||
enabled = sm['selfdriveState'].enabled
|
||||
wrong_gear = sm['carState'].gearShifter not in (car.CarState.GearShifter.drive, car.CarState.GearShifter.low)
|
||||
lowspeed = car_speed < self.settings._ALERT_MIN_SPEED
|
||||
driver_engaged = sm['carState'].steeringPressed or sm['carState'].gasPressed
|
||||
brake_disengage_prob = sm['modelV2'].meta.disengagePredictions.brakeDisengageProbs[0] # brake disengage prob in next 2s
|
||||
steering_angle_deg = sm['carState'].steeringAngleDeg
|
||||
rpyCalib = sm['liveCalibration'].rpyCalib
|
||||
|
||||
self._set_pose_strictness(
|
||||
brake_disengage_prob=brake_disengage_prob,
|
||||
car_speed=car_speed,
|
||||
)
|
||||
|
||||
# Parse data from dmonitoringmodeld
|
||||
self._update_states(
|
||||
driver_state=sm['driverStateV2'],
|
||||
cal_rpy=rpyCalib,
|
||||
car_speed=car_speed,
|
||||
op_engaged=enabled,
|
||||
lowspeed=lowspeed,
|
||||
demo_mode=demo,
|
||||
steering_angle_deg=steering_angle_deg,
|
||||
)
|
||||
|
||||
# Update distraction events
|
||||
self._update_events(
|
||||
driver_engaged=driver_engaged,
|
||||
op_engaged=enabled,
|
||||
lowspeed=lowspeed,
|
||||
wrong_gear=wrong_gear,
|
||||
)
|
||||
24
selfdrive/monitoring/test_dmonitoringd.py
Normal file
24
selfdrive/monitoring/test_dmonitoringd.py
Normal file
@@ -0,0 +1,24 @@
|
||||
from types import SimpleNamespace
|
||||
|
||||
import pytest
|
||||
|
||||
from openpilot.selfdrive.monitoring.dmonitoringd import get_dm_inputs
|
||||
|
||||
|
||||
@pytest.mark.parametrize("enabled, lat_active, expected", [
|
||||
(False, False, False),
|
||||
(True, False, True),
|
||||
(False, True, True),
|
||||
(True, True, True),
|
||||
])
|
||||
def test_iq_enabled_adapter(enabled, lat_active, expected):
|
||||
sm = {
|
||||
'driverStateV2': object(),
|
||||
'liveCalibration': object(),
|
||||
'carState': object(),
|
||||
'selfdriveState': SimpleNamespace(enabled=enabled),
|
||||
'modelV2': object(),
|
||||
'carControl': SimpleNamespace(latActive=lat_active),
|
||||
}
|
||||
|
||||
assert get_dm_inputs(sm)['selfdriveState'].enabled == expected
|
||||
@@ -1,19 +1,15 @@
|
||||
import numpy as np
|
||||
import pytest
|
||||
|
||||
from cereal import log, car
|
||||
from cereal import log
|
||||
from openpilot.common.realtime import DT_DMON
|
||||
from openpilot.selfdrive.monitoring.helpers import DriverMonitoring, DRIVER_MONITOR_SETTINGS
|
||||
from openpilot.system.hardware import HARDWARE
|
||||
from openpilot.selfdrive.monitoring.policy import DriverMonitoring, DRIVER_MONITOR_SETTINGS
|
||||
|
||||
EventName = log.OnroadEvent.EventName
|
||||
dm_settings = DRIVER_MONITOR_SETTINGS(device_type=HARDWARE.get_device_type())
|
||||
dm_settings = DRIVER_MONITOR_SETTINGS()
|
||||
|
||||
TEST_TIMESPAN = 120 # seconds
|
||||
DISTRACTED_SECONDS_TO_ORANGE = dm_settings._DISTRACTED_TIME - dm_settings._DISTRACTED_PROMPT_TIME_TILL_TERMINAL + 1
|
||||
DISTRACTED_SECONDS_TO_RED = dm_settings._DISTRACTED_TIME + 1
|
||||
INVISIBLE_SECONDS_TO_ORANGE = dm_settings._AWARENESS_TIME - dm_settings._AWARENESS_PROMPT_TIME_TILL_TERMINAL + 1
|
||||
INVISIBLE_SECONDS_TO_RED = dm_settings._AWARENESS_TIME + 1
|
||||
DISTRACTED_SECONDS_TO_ORANGE = dm_settings._VISION_POLICY_ALERT_2_TIMEOUT + 1
|
||||
DISTRACTED_SECONDS_TO_RED = dm_settings._VISION_POLICY_ALERT_3_TIMEOUT + 1
|
||||
INVISIBLE_SECONDS_TO_ORANGE = dm_settings._WHEELTOUCH_POLICY_ALERT_2_TIMEOUT + 1
|
||||
INVISIBLE_SECONDS_TO_RED = dm_settings._WHEELTOUCH_POLICY_ALERT_3_TIMEOUT + 1
|
||||
|
||||
def make_msg(face_detected, distracted=False, model_uncertain=False):
|
||||
ds = log.DriverStateV2.new_message()
|
||||
@@ -37,7 +33,7 @@ msg_ATTENTIVE = make_msg(True)
|
||||
msg_DISTRACTED = make_msg(True, distracted=True)
|
||||
msg_ATTENTIVE_UNCERTAIN = make_msg(True, model_uncertain=True)
|
||||
msg_DISTRACTED_UNCERTAIN = make_msg(True, distracted=True, model_uncertain=True)
|
||||
msg_DISTRACTED_BUT_SOMEHOW_UNCERTAIN = make_msg(True, distracted=True, model_uncertain=dm_settings._POSESTD_THRESHOLD*1.5)
|
||||
msg_DISTRACTED_BUT_SOMEHOW_UNCERTAIN = make_msg(True, distracted=True, model_uncertain=dm_settings._HI_STD_THRESHOLD*1.5)
|
||||
|
||||
# driver interaction with car
|
||||
car_interaction_DETECTED = True
|
||||
@@ -51,51 +47,66 @@ always_true = [True] * int(TEST_TIMESPAN / DT_DMON)
|
||||
always_false = [False] * int(TEST_TIMESPAN / DT_DMON)
|
||||
|
||||
class TestMonitoring:
|
||||
def _run_seq(self, msgs, interaction, engaged, standstill):
|
||||
def _run_seq(self, msgs, interaction, engaged, lowspeed):
|
||||
DM = DriverMonitoring()
|
||||
events = []
|
||||
alert_lvls = []
|
||||
for idx in range(len(msgs)):
|
||||
DM._update_states(msgs[idx], [0, 0, 0], 0, engaged[idx], standstill[idx])
|
||||
DM._update_states(msgs[idx], [0, 0, 0], 0, engaged[idx], lowspeed[idx])
|
||||
# cal_rpy and car_speed don't matter here
|
||||
|
||||
# evaluate events at 10Hz for tests
|
||||
DM._update_events(interaction[idx], engaged[idx], standstill[idx], 0, 0)
|
||||
events.append(DM.current_events)
|
||||
assert len(events) == len(msgs), f"got {len(events)} for {len(msgs)} driverState input msgs"
|
||||
return events, DM
|
||||
DM._update_events(interaction[idx], engaged[idx], lowspeed[idx], 0)
|
||||
alert_lvls.append(DM.alert_level)
|
||||
assert len(alert_lvls) == len(msgs), f"got {len(alert_lvls)} for {len(msgs)} driverState input msgs"
|
||||
return alert_lvls, DM
|
||||
|
||||
def _assert_no_events(self, events):
|
||||
assert all(not len(e) for e in events)
|
||||
|
||||
# engaged, driver is attentive all the time
|
||||
def test_fully_aware_driver(self):
|
||||
events, _ = self._run_seq(always_attentive, always_false, always_true, always_false)
|
||||
self._assert_no_events(events)
|
||||
alert_lvls, d_status = self._run_seq(always_attentive, always_false, always_true, always_false)
|
||||
assert all(a == 0 for a in alert_lvls)
|
||||
assert d_status.active_policy == log.DriverMonitoringState.MonitoringPolicy.vision
|
||||
|
||||
# engaged, driver is distracted and does nothing
|
||||
def test_fully_distracted_driver(self):
|
||||
events, d_status = self._run_seq(always_distracted, always_false, always_true, always_false)
|
||||
assert len(events[int((d_status.settings._DISTRACTED_TIME-d_status.settings._DISTRACTED_PRE_TIME_TILL_TERMINAL)/2/DT_DMON)]) == 0
|
||||
assert events[int((d_status.settings._DISTRACTED_TIME-d_status.settings._DISTRACTED_PRE_TIME_TILL_TERMINAL + \
|
||||
((d_status.settings._DISTRACTED_PRE_TIME_TILL_TERMINAL-d_status.settings._DISTRACTED_PROMPT_TIME_TILL_TERMINAL)/2))/DT_DMON)].names[0] == \
|
||||
EventName.preDriverDistracted
|
||||
assert events[int((d_status.settings._DISTRACTED_TIME-d_status.settings._DISTRACTED_PROMPT_TIME_TILL_TERMINAL + \
|
||||
((d_status.settings._DISTRACTED_PROMPT_TIME_TILL_TERMINAL)/2))/DT_DMON)].names[0] == EventName.promptDriverDistracted
|
||||
assert events[int((d_status.settings._DISTRACTED_TIME + \
|
||||
((TEST_TIMESPAN-10-d_status.settings._DISTRACTED_TIME)/2))/DT_DMON)].names[0] == EventName.driverDistracted
|
||||
alert_lvls, d_status = self._run_seq(always_distracted, always_false, always_true, always_false)
|
||||
s = d_status.settings
|
||||
assert alert_lvls[int(s._VISION_POLICY_ALERT_1_TIMEOUT / 2 / DT_DMON)] == 0
|
||||
assert alert_lvls[int((s._VISION_POLICY_ALERT_1_TIMEOUT + \
|
||||
(s._VISION_POLICY_ALERT_2_TIMEOUT - s._VISION_POLICY_ALERT_1_TIMEOUT) / 2) / DT_DMON)] == 1
|
||||
assert alert_lvls[int((s._VISION_POLICY_ALERT_2_TIMEOUT + \
|
||||
(s._VISION_POLICY_ALERT_3_TIMEOUT - s._VISION_POLICY_ALERT_2_TIMEOUT) / 2) / DT_DMON)] == 2
|
||||
assert alert_lvls[int((s._VISION_POLICY_ALERT_3_TIMEOUT + \
|
||||
(TEST_TIMESPAN - 10 - s._VISION_POLICY_ALERT_3_TIMEOUT) / 2) / DT_DMON)] == 3
|
||||
assert isinstance(d_status.awareness, float)
|
||||
|
||||
# engaged, distracted past red and beyond the no-response window -> unavailability response + lockout
|
||||
def test_distracted_lockout(self):
|
||||
alert_lvls, d_status = self._run_seq(always_distracted, always_false, always_true, always_false)
|
||||
assert alert_lvls[int(DISTRACTED_SECONDS_TO_RED / DT_DMON)] == 3
|
||||
assert d_status.lockout_active
|
||||
assert d_status.lockout_time_elapsed > 0
|
||||
assert d_status.lockout_count >= 1
|
||||
|
||||
# no face -> wheeltouch red, sustained past the no-response timeout -> unavailability response + lockout
|
||||
def test_invisible_lockout(self):
|
||||
_, d_status = self._run_seq(always_no_face, always_false, always_true, always_false)
|
||||
assert d_status.active_policy == log.DriverMonitoringState.MonitoringPolicy.wheeltouch
|
||||
assert d_status.lockout_active
|
||||
assert d_status.lockout_count >= 1
|
||||
|
||||
# engaged, no face detected the whole time, no action
|
||||
def test_fully_invisible_driver(self):
|
||||
events, d_status = self._run_seq(always_no_face, always_false, always_true, always_false)
|
||||
assert len(events[int((d_status.settings._AWARENESS_TIME-d_status.settings._AWARENESS_PRE_TIME_TILL_TERMINAL)/2/DT_DMON)]) == 0
|
||||
assert events[int((d_status.settings._AWARENESS_TIME-d_status.settings._AWARENESS_PRE_TIME_TILL_TERMINAL + \
|
||||
((d_status.settings._AWARENESS_PRE_TIME_TILL_TERMINAL-d_status.settings._AWARENESS_PROMPT_TIME_TILL_TERMINAL)/2))/DT_DMON)].names[0] == \
|
||||
EventName.preDriverUnresponsive
|
||||
assert events[int((d_status.settings._AWARENESS_TIME-d_status.settings._AWARENESS_PROMPT_TIME_TILL_TERMINAL + \
|
||||
((d_status.settings._AWARENESS_PROMPT_TIME_TILL_TERMINAL)/2))/DT_DMON)].names[0] == EventName.promptDriverUnresponsive
|
||||
assert events[int((d_status.settings._AWARENESS_TIME + \
|
||||
((TEST_TIMESPAN-10-d_status.settings._AWARENESS_TIME)/2))/DT_DMON)].names[0] == EventName.driverUnresponsive
|
||||
alert_lvls, d_status = self._run_seq(always_no_face, always_false, always_true, always_false)
|
||||
s = d_status.settings
|
||||
assert alert_lvls[int(s._WHEELTOUCH_POLICY_ALERT_1_TIMEOUT / 2 / DT_DMON)] == 0
|
||||
assert alert_lvls[int((s._WHEELTOUCH_POLICY_ALERT_1_TIMEOUT + \
|
||||
(s._WHEELTOUCH_POLICY_ALERT_2_TIMEOUT - s._WHEELTOUCH_POLICY_ALERT_1_TIMEOUT) / 2) / DT_DMON)] == 1
|
||||
assert alert_lvls[int((s._WHEELTOUCH_POLICY_ALERT_2_TIMEOUT + \
|
||||
(s._WHEELTOUCH_POLICY_ALERT_3_TIMEOUT - s._WHEELTOUCH_POLICY_ALERT_2_TIMEOUT) / 2) / DT_DMON)] == 2
|
||||
assert alert_lvls[int((s._WHEELTOUCH_POLICY_ALERT_3_TIMEOUT + \
|
||||
(TEST_TIMESPAN - 10 - s._WHEELTOUCH_POLICY_ALERT_3_TIMEOUT) / 2) / DT_DMON)] == 3
|
||||
assert d_status.active_policy == log.DriverMonitoringState.MonitoringPolicy.wheeltouch
|
||||
|
||||
# engaged, down to orange, driver pays attention, back to normal; then down to orange, driver touches wheel
|
||||
# - should have short orange recovery time and no green afterwards; wheel touch only recovers when paying attention
|
||||
@@ -106,13 +117,13 @@ class TestMonitoring:
|
||||
[msg_ATTENTIVE] * (int(TEST_TIMESPAN/DT_DMON)-int((DISTRACTED_SECONDS_TO_ORANGE*3+2)/DT_DMON))
|
||||
interaction_vector = [car_interaction_NOT_DETECTED] * int(DISTRACTED_SECONDS_TO_ORANGE*3/DT_DMON) + \
|
||||
[car_interaction_DETECTED] * (int(TEST_TIMESPAN/DT_DMON)-int(DISTRACTED_SECONDS_TO_ORANGE*3/DT_DMON))
|
||||
events, _ = self._run_seq(ds_vector, interaction_vector, always_true, always_false)
|
||||
assert len(events[int(DISTRACTED_SECONDS_TO_ORANGE*0.5/DT_DMON)]) == 0
|
||||
assert events[int((DISTRACTED_SECONDS_TO_ORANGE-0.1)/DT_DMON)].names[0] == EventName.promptDriverDistracted
|
||||
assert len(events[int(DISTRACTED_SECONDS_TO_ORANGE*1.5/DT_DMON)]) == 0
|
||||
assert events[int((DISTRACTED_SECONDS_TO_ORANGE*3-0.1)/DT_DMON)].names[0] == EventName.promptDriverDistracted
|
||||
assert events[int((DISTRACTED_SECONDS_TO_ORANGE*3+0.1)/DT_DMON)].names[0] == EventName.promptDriverDistracted
|
||||
assert len(events[int((DISTRACTED_SECONDS_TO_ORANGE*3+2.5)/DT_DMON)]) == 0
|
||||
alert_lvls, _ = self._run_seq(ds_vector, interaction_vector, always_true, always_false)
|
||||
assert alert_lvls[int(DISTRACTED_SECONDS_TO_ORANGE*0.5/DT_DMON)] == 0
|
||||
assert alert_lvls[int((DISTRACTED_SECONDS_TO_ORANGE-0.1)/DT_DMON)] == 2
|
||||
assert alert_lvls[int(DISTRACTED_SECONDS_TO_ORANGE*1.5/DT_DMON)] == 0
|
||||
assert alert_lvls[int((DISTRACTED_SECONDS_TO_ORANGE*3-0.1)/DT_DMON)] == 2
|
||||
assert alert_lvls[int((DISTRACTED_SECONDS_TO_ORANGE*3+0.1)/DT_DMON)] == 2
|
||||
assert alert_lvls[int((DISTRACTED_SECONDS_TO_ORANGE*3+2.5)/DT_DMON)] == 0
|
||||
|
||||
# engaged, down to orange, driver dodges camera, then comes back still distracted, down to red, \
|
||||
# driver dodges, and then touches wheel to no avail, disengages and reengages
|
||||
@@ -130,31 +141,31 @@ class TestMonitoring:
|
||||
= [True] * int(1/DT_DMON)
|
||||
op_vector[int((DISTRACTED_SECONDS_TO_RED+2*_invisible_time+2.5)/DT_DMON):int((DISTRACTED_SECONDS_TO_RED+2*_invisible_time+3)/DT_DMON)] \
|
||||
= [False] * int(0.5/DT_DMON)
|
||||
events, _ = self._run_seq(ds_vector, interaction_vector, op_vector, always_false)
|
||||
assert events[int((DISTRACTED_SECONDS_TO_ORANGE+0.5*_invisible_time)/DT_DMON)].names[0] == EventName.promptDriverDistracted
|
||||
assert events[int((DISTRACTED_SECONDS_TO_RED+1.5*_invisible_time)/DT_DMON)].names[0] == EventName.driverDistracted
|
||||
assert events[int((DISTRACTED_SECONDS_TO_RED+2*_invisible_time+1.5)/DT_DMON)].names[0] == EventName.driverDistracted
|
||||
assert len(events[int((DISTRACTED_SECONDS_TO_RED+2*_invisible_time+3.5)/DT_DMON)]) == 0
|
||||
alert_lvls, _ = self._run_seq(ds_vector, interaction_vector, op_vector, always_false)
|
||||
assert alert_lvls[int((DISTRACTED_SECONDS_TO_ORANGE+0.5*_invisible_time)/DT_DMON)] == 2
|
||||
assert alert_lvls[int((DISTRACTED_SECONDS_TO_RED+1.5*_invisible_time)/DT_DMON)] == 3
|
||||
assert alert_lvls[int((DISTRACTED_SECONDS_TO_RED+2*_invisible_time+1.5)/DT_DMON)] == 3
|
||||
assert alert_lvls[int((DISTRACTED_SECONDS_TO_RED+2*_invisible_time+3.5)/DT_DMON)] == 0
|
||||
|
||||
# engaged, invisible driver, down to orange, driver touches wheel; then down to orange again, driver appears
|
||||
# - both actions should clear the alert, but momentary appearance should not
|
||||
def test_sometimes_transparent_commuter(self):
|
||||
_visible_time = np.random.choice([0.5, 10])
|
||||
ds_vector = always_no_face[:]*2
|
||||
interaction_vector = always_false[:]*2
|
||||
ds_vector[int((2*INVISIBLE_SECONDS_TO_ORANGE+1)/DT_DMON):int((2*INVISIBLE_SECONDS_TO_ORANGE+1+_visible_time)/DT_DMON)] = \
|
||||
[msg_ATTENTIVE] * int(_visible_time/DT_DMON)
|
||||
interaction_vector[int((INVISIBLE_SECONDS_TO_ORANGE)/DT_DMON):int((INVISIBLE_SECONDS_TO_ORANGE+1)/DT_DMON)] = [True] * int(1/DT_DMON)
|
||||
events, _ = self._run_seq(ds_vector, interaction_vector, 2*always_true, 2*always_false)
|
||||
assert len(events[int(INVISIBLE_SECONDS_TO_ORANGE*0.5/DT_DMON)]) == 0
|
||||
assert events[int((INVISIBLE_SECONDS_TO_ORANGE-0.1)/DT_DMON)].names[0] == EventName.promptDriverUnresponsive
|
||||
assert len(events[int((INVISIBLE_SECONDS_TO_ORANGE+0.1)/DT_DMON)]) == 0
|
||||
if _visible_time == 0.5:
|
||||
assert events[int((INVISIBLE_SECONDS_TO_ORANGE*2+1-0.1)/DT_DMON)].names[0] == EventName.promptDriverUnresponsive
|
||||
assert events[int((INVISIBLE_SECONDS_TO_ORANGE*2+1+0.1+_visible_time)/DT_DMON)].names[0] == EventName.preDriverUnresponsive
|
||||
elif _visible_time == 10:
|
||||
assert events[int((INVISIBLE_SECONDS_TO_ORANGE*2+1-0.1)/DT_DMON)].names[0] == EventName.promptDriverUnresponsive
|
||||
assert len(events[int((INVISIBLE_SECONDS_TO_ORANGE*2+1+0.1+_visible_time)/DT_DMON)]) == 0
|
||||
for _visible_time in (0.5, 10):
|
||||
ds_vector = always_no_face[:]*2
|
||||
interaction_vector = always_false[:]*2
|
||||
ds_vector[int((2*INVISIBLE_SECONDS_TO_ORANGE+1)/DT_DMON):int((2*INVISIBLE_SECONDS_TO_ORANGE+1+_visible_time)/DT_DMON)] = \
|
||||
[msg_ATTENTIVE] * int(_visible_time/DT_DMON)
|
||||
interaction_vector[int((INVISIBLE_SECONDS_TO_ORANGE)/DT_DMON):int((INVISIBLE_SECONDS_TO_ORANGE+1)/DT_DMON)] = [True] * int(1/DT_DMON)
|
||||
alert_lvls, _ = self._run_seq(ds_vector, interaction_vector, 2*always_true, 2*always_false)
|
||||
assert alert_lvls[int(dm_settings._WHEELTOUCH_POLICY_ALERT_1_TIMEOUT/2/DT_DMON)] == 0
|
||||
assert alert_lvls[int((INVISIBLE_SECONDS_TO_ORANGE-0.1)/DT_DMON)] == 2
|
||||
assert alert_lvls[int((INVISIBLE_SECONDS_TO_ORANGE+0.1)/DT_DMON)] == 0
|
||||
if _visible_time == 0.5:
|
||||
assert alert_lvls[int((INVISIBLE_SECONDS_TO_ORANGE*2+1-0.1)/DT_DMON)] == 2
|
||||
assert alert_lvls[int((INVISIBLE_SECONDS_TO_ORANGE*2+1+0.1+_visible_time)/DT_DMON)] == 2
|
||||
elif _visible_time == 10:
|
||||
assert alert_lvls[int((INVISIBLE_SECONDS_TO_ORANGE*2+1-0.1)/DT_DMON)] == 2
|
||||
assert alert_lvls[int((INVISIBLE_SECONDS_TO_ORANGE*2+1+0.1+_visible_time)/DT_DMON)] == 0
|
||||
|
||||
# engaged, invisible driver, down to red, driver appears and then touches wheel, then disengages/reengages
|
||||
# - only disengage will clear the alert
|
||||
@@ -166,105 +177,51 @@ class TestMonitoring:
|
||||
ds_vector[int(INVISIBLE_SECONDS_TO_RED/DT_DMON):int((INVISIBLE_SECONDS_TO_RED+_visible_time)/DT_DMON)] = [msg_ATTENTIVE] * int(_visible_time/DT_DMON)
|
||||
interaction_vector[int((INVISIBLE_SECONDS_TO_RED+_visible_time)/DT_DMON):int((INVISIBLE_SECONDS_TO_RED+_visible_time+1)/DT_DMON)] = [True] * int(1/DT_DMON)
|
||||
op_vector[int((INVISIBLE_SECONDS_TO_RED+_visible_time+1)/DT_DMON):int((INVISIBLE_SECONDS_TO_RED+_visible_time+0.5)/DT_DMON)] = [False] * int(0.5/DT_DMON)
|
||||
events, _ = self._run_seq(ds_vector, interaction_vector, op_vector, always_false)
|
||||
assert len(events[int(INVISIBLE_SECONDS_TO_ORANGE*0.5/DT_DMON)]) == 0
|
||||
assert events[int((INVISIBLE_SECONDS_TO_ORANGE-0.1)/DT_DMON)].names[0] == EventName.promptDriverUnresponsive
|
||||
assert events[int((INVISIBLE_SECONDS_TO_RED-0.1)/DT_DMON)].names[0] == EventName.driverUnresponsive
|
||||
assert events[int((INVISIBLE_SECONDS_TO_RED+0.5*_visible_time)/DT_DMON)].names[0] == EventName.driverUnresponsive
|
||||
assert events[int((INVISIBLE_SECONDS_TO_RED+_visible_time+0.5)/DT_DMON)].names[0] == EventName.driverUnresponsive
|
||||
assert len(events[int((INVISIBLE_SECONDS_TO_RED+_visible_time+1+0.1)/DT_DMON)]) == 0
|
||||
alert_lvls, _ = self._run_seq(ds_vector, interaction_vector, op_vector, always_false)
|
||||
assert alert_lvls[int(dm_settings._WHEELTOUCH_POLICY_ALERT_1_TIMEOUT/2/DT_DMON)] == 0
|
||||
assert alert_lvls[int((INVISIBLE_SECONDS_TO_ORANGE-0.1)/DT_DMON)] == 2
|
||||
assert alert_lvls[int((INVISIBLE_SECONDS_TO_RED-0.1)/DT_DMON)] == 3
|
||||
assert alert_lvls[int((INVISIBLE_SECONDS_TO_RED+0.5*_visible_time)/DT_DMON)] == 3
|
||||
assert alert_lvls[int((INVISIBLE_SECONDS_TO_RED+_visible_time+0.5)/DT_DMON)] == 3
|
||||
assert alert_lvls[int((INVISIBLE_SECONDS_TO_RED+_visible_time+1+0.1)/DT_DMON)] == 0
|
||||
|
||||
# disengaged, always distracted driver
|
||||
# - dm should stay quiet when not engaged
|
||||
def test_pure_dashcam_user(self):
|
||||
events, _ = self._run_seq(always_distracted, always_false, always_false, always_false)
|
||||
assert sum(len(event) for event in events) == 0
|
||||
alert_lvls, _ = self._run_seq(always_distracted, always_false, always_false, always_false)
|
||||
assert all(a == 0 for a in alert_lvls)
|
||||
|
||||
# engaged, car stops at traffic light, down to orange, no action, then car starts moving
|
||||
# - should only reach green when stopped, but continues counting down on launch
|
||||
def test_long_traffic_light_victim(self):
|
||||
_redlight_time = 60 # seconds
|
||||
standstill_vector = always_true[:]
|
||||
standstill_vector[int(_redlight_time/DT_DMON):] = [False] * int((TEST_TIMESPAN-_redlight_time)/DT_DMON)
|
||||
events, d_status = self._run_seq(always_distracted, always_false, always_true, standstill_vector)
|
||||
assert events[int((d_status.settings._DISTRACTED_TIME-d_status.settings._DISTRACTED_PRE_TIME_TILL_TERMINAL+1)/DT_DMON)].names[0] == \
|
||||
EventName.preDriverDistracted
|
||||
assert events[int((_redlight_time-0.1)/DT_DMON)].names[0] == EventName.preDriverDistracted
|
||||
assert events[int((_redlight_time+0.5)/DT_DMON)].names[0] == EventName.promptDriverDistracted
|
||||
lowspeed_vector = always_true[:]
|
||||
lowspeed_vector[int(_redlight_time/DT_DMON):] = [False] * int((TEST_TIMESPAN-_redlight_time)/DT_DMON)
|
||||
alert_lvls, d_status = self._run_seq(always_distracted, always_false, always_true, lowspeed_vector)
|
||||
s = d_status.settings
|
||||
assert alert_lvls[int((_redlight_time-0.1)/DT_DMON)] == 0
|
||||
_alert_1_to_2 = s._VISION_POLICY_ALERT_2_TIMEOUT - s._VISION_POLICY_ALERT_1_TIMEOUT
|
||||
assert alert_lvls[int((_redlight_time+0.5)/DT_DMON)] == 1
|
||||
assert alert_lvls[int((_redlight_time+_alert_1_to_2+0.5)/DT_DMON)] == 2
|
||||
|
||||
# engaged, distracted while moving, then car stops after reaching orange
|
||||
# - should reset timer to pre green at low speed
|
||||
def test_distracted_then_stops(self):
|
||||
_stop_time = DISTRACTED_SECONDS_TO_ORANGE + 1 # stop 1 second after reaching orange
|
||||
lowspeed_vector = always_false[:]
|
||||
lowspeed_vector[int(_stop_time/DT_DMON):] = [True] * int((TEST_TIMESPAN-_stop_time)/DT_DMON)
|
||||
alert_lvls, _ = self._run_seq(always_distracted, always_false, always_true, lowspeed_vector)
|
||||
# just before and briefly after stopping: orange alert; goes away quickly after stopped
|
||||
assert alert_lvls[int((_stop_time+0.1)/DT_DMON)] == 2
|
||||
assert alert_lvls[int((_stop_time+0.5)/DT_DMON)] == 0
|
||||
|
||||
# engaged, model is somehow uncertain and driver is distracted
|
||||
# - should fall back to wheel touch after uncertain alert
|
||||
def test_somehow_indecisive_model(self):
|
||||
ds_vector = [msg_DISTRACTED_BUT_SOMEHOW_UNCERTAIN] * int(TEST_TIMESPAN/DT_DMON)
|
||||
interaction_vector = always_false[:]
|
||||
events, d_status = self._run_seq(ds_vector, interaction_vector, always_true, always_false)
|
||||
assert EventName.preDriverUnresponsive in \
|
||||
events[int((INVISIBLE_SECONDS_TO_ORANGE-1+DT_DMON*d_status.settings._HI_STD_FALLBACK_TIME-0.1)/DT_DMON)].names
|
||||
assert EventName.promptDriverUnresponsive in \
|
||||
events[int((INVISIBLE_SECONDS_TO_ORANGE-1+DT_DMON*d_status.settings._HI_STD_FALLBACK_TIME+0.1)/DT_DMON)].names
|
||||
assert EventName.driverUnresponsive in \
|
||||
events[int((INVISIBLE_SECONDS_TO_RED-1+DT_DMON*d_status.settings._HI_STD_FALLBACK_TIME+0.1)/DT_DMON)].names
|
||||
|
||||
|
||||
@pytest.mark.parametrize("enabled_state, lat_active_state, expected", [
|
||||
(False, False, False), # Both Disabled
|
||||
(True, False, True), # OP Enabled, Lat Inactive
|
||||
(False, True, True), # OP Disabled, Lat Active (e.g. AOL)
|
||||
(True, True, True) # Both Active
|
||||
])
|
||||
def test_enabled_states(enabled_state, lat_active_state, expected):
|
||||
"""
|
||||
Test DriverMonitoring.run_step with all 4 combinations of:
|
||||
- selfdriveState.enabled (True/False)
|
||||
- carControl.latActive (True/False)
|
||||
"""
|
||||
cs = car.CarState.new_message()
|
||||
cs.vEgo = 30.0
|
||||
cs.gearShifter = car.CarState.GearShifter.drive
|
||||
cs.standstill = False
|
||||
cs.steeringPressed = False
|
||||
cs.gasPressed = False
|
||||
|
||||
ss = log.SelfdriveState.new_message()
|
||||
ss.enabled = enabled_state
|
||||
|
||||
cc = car.CarControl.new_message()
|
||||
cc.latActive = lat_active_state
|
||||
|
||||
mv2 = log.ModelDataV2.new_message()
|
||||
mv2.meta.disengagePredictions.brakeDisengageProbs = [0.0]
|
||||
|
||||
lc = log.LiveCalibrationData.new_message()
|
||||
lc.rpyCalib = [0.0, 0.0, 0.0]
|
||||
|
||||
ds = make_msg(False)
|
||||
|
||||
sm = {
|
||||
'carState': cs,
|
||||
'selfdriveState': ss,
|
||||
'carControl': cc,
|
||||
'modelV2': mv2,
|
||||
'liveCalibration': lc,
|
||||
'driverStateV2': ds
|
||||
}
|
||||
|
||||
driver_monitoring = DriverMonitoring()
|
||||
|
||||
# run_test doesn't assign enabled to a variable, so we need to spy on _update_events to see its value
|
||||
captured_args = []
|
||||
original_update_events = driver_monitoring._update_events
|
||||
|
||||
def spy_update_events(driver_engaged, op_engaged, standstill, wrong_gear, car_speed):
|
||||
captured_args.append(op_engaged)
|
||||
return original_update_events(driver_engaged, op_engaged, standstill, wrong_gear, car_speed)
|
||||
|
||||
driver_monitoring._update_events = spy_update_events
|
||||
|
||||
driver_monitoring.run_step(sm, demo=False)
|
||||
|
||||
# Assertion
|
||||
assert len(captured_args) == 1, "Expected _update_events to be called exactly once"
|
||||
actual_enabled = captured_args[0]
|
||||
|
||||
assert actual_enabled == expected, f"Expected op_engaged={expected}, but got {actual_enabled}"
|
||||
|
||||
alert_lvls, d_status = self._run_seq(ds_vector, interaction_vector, always_true, always_false)
|
||||
s = d_status.settings
|
||||
assert alert_lvls[int((INVISIBLE_SECONDS_TO_ORANGE-1+DT_DMON*s._HI_STD_FALLBACK_TIME-0.1)/DT_DMON)] == 1
|
||||
assert alert_lvls[int((INVISIBLE_SECONDS_TO_ORANGE-1+DT_DMON*s._HI_STD_FALLBACK_TIME+0.1)/DT_DMON)] == 2
|
||||
assert alert_lvls[int((INVISIBLE_SECONDS_TO_RED-1+DT_DMON*s._HI_STD_FALLBACK_TIME+0.1)/DT_DMON)] == 3
|
||||
|
||||
Reference in New Issue
Block a user