blakeblackshear.frigate/frigate/config.py

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from __future__ import annotations
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import json
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import logging
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import os
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from enum import Enum
from pathlib import Path
from typing import Any, Dict, List, Optional, Tuple, Union
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import numpy as np
from pydantic import (
BaseModel,
ConfigDict,
Field,
TypeAdapter,
ValidationInfo,
field_serializer,
field_validator,
)
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from pydantic.fields import PrivateAttr
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from frigate.const import (
ALL_ATTRIBUTE_LABELS,
AUDIO_MIN_CONFIDENCE,
CACHE_DIR,
CACHE_SEGMENT_FORMAT,
DEFAULT_DB_PATH,
FREQUENCY_STATS_POINTS,
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MAX_PRE_CAPTURE,
REGEX_CAMERA_NAME,
YAML_EXT,
)
from frigate.detectors import DetectorConfig, ModelConfig
from frigate.detectors.detector_config import BaseDetectorConfig
from frigate.ffmpeg_presets import (
parse_preset_hardware_acceleration_decode,
parse_preset_hardware_acceleration_scale,
parse_preset_input,
parse_preset_output_record,
)
from frigate.plus import PlusApi
from frigate.util.builtin import (
deep_merge,
escape_special_characters,
generate_color_palette,
get_ffmpeg_arg_list,
load_config_with_no_duplicates,
)
from frigate.util.config import StreamInfoRetriever, get_relative_coordinates
from frigate.util.image import create_mask
from frigate.util.services import auto_detect_hwaccel
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logger = logging.getLogger(__name__)
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# TODO: Identify what the default format to display timestamps is
DEFAULT_TIME_FORMAT = "%m/%d/%Y %H:%M:%S"
# German Style:
# DEFAULT_TIME_FORMAT = "%d.%m.%Y %H:%M:%S"
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FRIGATE_ENV_VARS = {k: v for k, v in os.environ.items() if k.startswith("FRIGATE_")}
# read docker secret files as env vars too
if os.path.isdir("/run/secrets") and os.access("/run/secrets", os.R_OK):
for secret_file in os.listdir("/run/secrets"):
if secret_file.startswith("FRIGATE_"):
FRIGATE_ENV_VARS[secret_file] = (
Path(os.path.join("/run/secrets", secret_file)).read_text().strip()
)
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DEFAULT_TRACKED_OBJECTS = ["person"]
DEFAULT_ALERT_OBJECTS = ["person", "car"]
DEFAULT_LISTEN_AUDIO = ["bark", "fire_alarm", "scream", "speech", "yell"]
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DEFAULT_DETECTORS = {"cpu": {"type": "cpu"}}
Feature: automatic camera resolution configuration (#6810) * Add auto configuration for height, width and fps in detect role * Add auto-configuration for detect width, height, and fps for input roles with detect in the CameraConfig class in config.py * Refactor code to retrieve video properties from input stream in CameraConfig class and add optional parameter to retrieve video duration in get_video_properties function * format * Set default detect dimensions to 1280x720 and update DetectConfig to use the defaults * Revert "Set default detect dimensions to 1280x720 and update DetectConfig to use the defaults" This reverts commit a1aed0414d75a6db0a826c08359740764c4861e5. * Add default detect dimensions if autoconfiguration failed and log a warning message * fix warn message spelling on frigate/config.py Co-authored-by: Nicolas Mowen <nickmowen213@gmail.com> * Ensure detect height and width are not None before using them in camera configuration * docs: initial commit * rename streamInfo to stream_info Co-authored-by: Blake Blackshear <blakeb@blakeshome.com> * Apply suggestions from code review Co-authored-by: Nicolas Mowen <nickmowen213@gmail.com> * Update docs * handle case then get_video_properties returns 0x0 dimension * Set detect resolution based on stream properties if available, else apply default values * Update FrigateConfig to set default values for stream_info if resolution detection fails * Update camera detection dimensions based on stream information if available --------- Co-authored-by: Nicolas Mowen <nickmowen213@gmail.com> Co-authored-by: Blake Blackshear <blakeb@blakeshome.com>
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DEFAULT_DETECT_DIMENSIONS = {"width": 1280, "height": 720}
DEFAULT_TIME_LAPSE_FFMPEG_ARGS = "-vf setpts=0.04*PTS -r 30"
# stream info handler
stream_info_retriever = StreamInfoRetriever()
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class FrigateBaseModel(BaseModel):
model_config = ConfigDict(extra="forbid", protected_namespaces=())
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class LiveModeEnum(str, Enum):
jsmpeg = "jsmpeg"
mse = "mse"
webrtc = "webrtc"
class TimeFormatEnum(str, Enum):
browser = "browser"
hours12 = "12hour"
hours24 = "24hour"
class DateTimeStyleEnum(str, Enum):
full = "full"
long = "long"
medium = "medium"
short = "short"
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class UIConfig(FrigateBaseModel):
timezone: Optional[str] = Field(default=None, title="Override UI timezone.")
time_format: TimeFormatEnum = Field(
default=TimeFormatEnum.browser, title="Override UI time format."
)
date_style: DateTimeStyleEnum = Field(
default=DateTimeStyleEnum.short, title="Override UI dateStyle."
)
time_style: DateTimeStyleEnum = Field(
default=DateTimeStyleEnum.medium, title="Override UI timeStyle."
)
strftime_fmt: Optional[str] = Field(
default=None, title="Override date and time format using strftime syntax."
)
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class TlsConfig(FrigateBaseModel):
enabled: bool = Field(default=True, title="Enable TLS for port 8971")
class HeaderMappingConfig(FrigateBaseModel):
user: str = Field(
default=None, title="Header name from upstream proxy to identify user."
)
class ProxyConfig(FrigateBaseModel):
header_map: HeaderMappingConfig = Field(
default_factory=HeaderMappingConfig,
title="Header mapping definitions for proxy user passing.",
)
logout_url: Optional[str] = Field(
default=None, title="Redirect url for logging out with proxy."
)
auth_secret: Optional[str] = Field(
default=None,
title="Secret value for proxy authentication.",
)
class AuthConfig(FrigateBaseModel):
enabled: bool = Field(default=True, title="Enable authentication")
reset_admin_password: bool = Field(
default=False, title="Reset the admin password on startup"
)
cookie_name: str = Field(
default="frigate_token", title="Name for jwt token cookie", pattern=r"^[a-z]_*$"
)
cookie_secure: bool = Field(default=False, title="Set secure flag on cookie")
session_length: int = Field(
default=86400, title="Session length for jwt session tokens", ge=60
)
refresh_time: int = Field(
default=43200,
title="Refresh the session if it is going to expire in this many seconds",
ge=30,
)
failed_login_rate_limit: Optional[str] = Field(
default=None,
title="Rate limits for failed login attempts.",
)
trusted_proxies: List[str] = Field(
default=[],
title="Trusted proxies for determining IP address to rate limit",
)
# As of Feb 2023, OWASP recommends 600000 iterations for PBKDF2-SHA256
hash_iterations: int = Field(default=600000, title="Password hash iterations")
class NotificationConfig(FrigateBaseModel):
enabled: bool = Field(default=False, title="Enable notifications")
email: Optional[str] = Field(default=None, title="Email required for push.")
class StatsConfig(FrigateBaseModel):
amd_gpu_stats: bool = Field(default=True, title="Enable AMD GPU stats.")
intel_gpu_stats: bool = Field(default=True, title="Enable Intel GPU stats.")
network_bandwidth: bool = Field(
default=False, title="Enable network bandwidth for ffmpeg processes."
)
class TelemetryConfig(FrigateBaseModel):
network_interfaces: List[str] = Field(
default=[],
title="Enabled network interfaces for bandwidth calculation.",
)
stats: StatsConfig = Field(
default_factory=StatsConfig, title="System Stats Configuration"
)
version_check: bool = Field(default=True, title="Enable latest version check.")
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class MqttConfig(FrigateBaseModel):
enabled: bool = Field(title="Enable MQTT Communication.", default=True)
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host: str = Field(default="", title="MQTT Host")
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port: int = Field(default=1883, title="MQTT Port")
topic_prefix: str = Field(default="frigate", title="MQTT Topic Prefix")
client_id: str = Field(default="frigate", title="MQTT Client ID")
stats_interval: int = Field(
default=60, ge=FREQUENCY_STATS_POINTS, title="MQTT Camera Stats Interval"
)
user: Optional[str] = Field(None, title="MQTT Username")
password: Optional[str] = Field(None, title="MQTT Password", validate_default=True)
tls_ca_certs: Optional[str] = Field(None, title="MQTT TLS CA Certificates")
tls_client_cert: Optional[str] = Field(None, title="MQTT TLS Client Certificate")
tls_client_key: Optional[str] = Field(None, title="MQTT TLS Client Key")
tls_insecure: Optional[bool] = Field(None, title="MQTT TLS Insecure")
@field_validator("password")
def user_requires_pass(cls, v, info: ValidationInfo):
if (v is None) != (info.data["user"] is None):
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raise ValueError("Password must be provided with username.")
return v
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class ZoomingModeEnum(str, Enum):
disabled = "disabled"
absolute = "absolute"
relative = "relative"
class PtzAutotrackConfig(FrigateBaseModel):
enabled: bool = Field(default=False, title="Enable PTZ object autotracking.")
calibrate_on_startup: bool = Field(
default=False, title="Perform a camera calibration when Frigate starts."
)
zooming: ZoomingModeEnum = Field(
default=ZoomingModeEnum.disabled, title="Autotracker zooming mode."
)
zoom_factor: float = Field(
default=0.3,
title="Zooming factor (0.1-0.75).",
ge=0.1,
le=0.75,
)
track: List[str] = Field(default=DEFAULT_TRACKED_OBJECTS, title="Objects to track.")
required_zones: List[str] = Field(
default_factory=list,
title="List of required zones to be entered in order to begin autotracking.",
)
return_preset: str = Field(
default="home",
title="Name of camera preset to return to when object tracking is over.",
)
timeout: int = Field(
default=10, title="Seconds to delay before returning to preset."
)
movement_weights: Optional[Union[str, List[str]]] = Field(
default=[],
title="Internal value used for PTZ movements based on the speed of your camera's motor.",
)
enabled_in_config: Optional[bool] = Field(
None, title="Keep track of original state of autotracking."
)
@field_validator("movement_weights", mode="before")
@classmethod
def validate_weights(cls, v):
if v is None:
return None
if isinstance(v, str):
weights = list(map(str, map(float, v.split(","))))
elif isinstance(v, list):
weights = [str(float(val)) for val in v]
else:
raise ValueError("Invalid type for movement_weights")
Autotracking bugfixes and zooming updates (#8103) * zoom in/out in search for lost objects * predicted box should not be empty * clean up and update zoom logic * only zoom if enabled * more cleanup * check for valid velocity when zooming * only try absolute zoom in if obj area has changed * zoom logic * don't enqueue lost object zoom if already at limit * don't disable motion boxes during ptz moves * velocity threshold based on move coefficients * fix area zoom logic * disable debug zoom * don't process objects if ptz moving * recalc with exponent * change exponent * remove lost object zooming * increase distance threshold for stationary object * increase distance threshold constant * only zoom out if nonzero * camera name in all debug logging * add camera name to debug logging * camera variable name consistency * update calibration behavior and docs * docs and better zooming * more sensible target values * docs wording * fix velocity threshold variable * zooming tweaks and remove iou for current objects * debug and docs * get valid velocity * include zero * additional debug statements * add zoom hysteresis * zoom on initial move if relative * only update target box if we actually zoom * merge dev * use getattr instead of get * increase distance threshold * reverse logic * get_camera_status after preset move to store zoom * final tweaks and docs * use constants and catch possible debug exception * adjust zoom factor exponent * don't run motion estimation when calling preset * adjust dimension threshold * use numpy for velocity estimate calcs * more numpy conversion * fix numpy shapes * numpy zeros dimension * more zoom out conditions * fix velocity bug * ensure init has been called in debug view * ensure onvif init if enabling by mqtt * change default hysteresis values * recalc relative zoom value * zoom out value * try to zoom when object isn't moving * try zoom when tracked object is not moving * don't try to zoom every time * negate zoom out condition when needed * hysteresis constants for absolute zooming * update zoom conditions * don't recalc target box on zoom only * zoom out if above area threshold * don't print zooming debug for stationary obj * revamp zooming to use area moving average * zooming tweaks and expose property * limit zoom with max target box * use calibration to determine zoom levels * zoom logic fix * docs * add tapo c200 camera * fix initial absolute zoom * small zoom logic fix * better invalid velocity checks * fix test * really fix test this time
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if len(weights) != 5:
raise ValueError("movement_weights must have exactly 5 floats")
return weights
class OnvifConfig(FrigateBaseModel):
host: str = Field(default="", title="Onvif Host")
port: int = Field(default=8000, title="Onvif Port")
user: Optional[str] = Field(None, title="Onvif Username")
password: Optional[str] = Field(None, title="Onvif Password")
autotracking: PtzAutotrackConfig = Field(
default_factory=PtzAutotrackConfig,
title="PTZ auto tracking config.",
)
ignore_time_mismatch: bool = Field(
default=False,
title="Onvif Ignore Time Synchronization Mismatch Between Camera and Server",
)
class RetainModeEnum(str, Enum):
all = "all"
motion = "motion"
active_objects = "active_objects"
class RecordRetainConfig(FrigateBaseModel):
days: float = Field(default=0, title="Default retention period.")
mode: RetainModeEnum = Field(default=RetainModeEnum.all, title="Retain mode.")
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class ReviewRetainConfig(FrigateBaseModel):
days: float = Field(default=10, title="Default retention period.")
mode: RetainModeEnum = Field(default=RetainModeEnum.motion, title="Retain mode.")
class EventsConfig(FrigateBaseModel):
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pre_capture: int = Field(
default=5, title="Seconds to retain before event starts.", le=MAX_PRE_CAPTURE
)
post_capture: int = Field(default=5, title="Seconds to retain after event ends.")
retain: ReviewRetainConfig = Field(
default_factory=ReviewRetainConfig, title="Event retention settings."
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)
class RecordExportConfig(FrigateBaseModel):
timelapse_args: str = Field(
default=DEFAULT_TIME_LAPSE_FFMPEG_ARGS, title="Timelapse Args"
)
class RecordQualityEnum(str, Enum):
very_low = "very_low"
low = "low"
medium = "medium"
high = "high"
very_high = "very_high"
class RecordPreviewConfig(FrigateBaseModel):
quality: RecordQualityEnum = Field(
default=RecordQualityEnum.medium, title="Quality of recording preview."
)
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class RecordConfig(FrigateBaseModel):
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enabled: bool = Field(default=False, title="Enable record on all cameras.")
sync_recordings: bool = Field(
default=False, title="Sync recordings with disk on startup and once a day."
)
expire_interval: int = Field(
default=60,
title="Number of minutes to wait between cleanup runs.",
)
retain: RecordRetainConfig = Field(
default_factory=RecordRetainConfig, title="Record retention settings."
)
detections: EventsConfig = Field(
default_factory=EventsConfig, title="Detection specific retention settings."
)
alerts: EventsConfig = Field(
default_factory=EventsConfig, title="Alert specific retention settings."
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)
export: RecordExportConfig = Field(
default_factory=RecordExportConfig, title="Recording Export Config"
)
preview: RecordPreviewConfig = Field(
default_factory=RecordPreviewConfig, title="Recording Preview Config"
)
enabled_in_config: Optional[bool] = Field(
None, title="Keep track of original state of recording."
)
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class MotionConfig(FrigateBaseModel):
enabled: bool = Field(default=True, title="Enable motion on all cameras.")
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threshold: int = Field(
default=30,
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title="Motion detection threshold (1-255).",
ge=1,
le=255,
)
lightning_threshold: float = Field(
default=0.8, title="Lightning detection threshold (0.3-1.0).", ge=0.3, le=1.0
)
improve_contrast: bool = Field(default=True, title="Improve Contrast")
contour_area: Optional[int] = Field(default=10, title="Contour Area")
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delta_alpha: float = Field(default=0.2, title="Delta Alpha")
frame_alpha: float = Field(default=0.01, title="Frame Alpha")
frame_height: Optional[int] = Field(default=100, title="Frame Height")
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mask: Union[str, List[str]] = Field(
default="", title="Coordinates polygon for the motion mask."
)
mqtt_off_delay: int = Field(
default=30,
title="Delay for updating MQTT with no motion detected.",
)
enabled_in_config: Optional[bool] = Field(
None, title="Keep track of original state of motion detection."
)
raw_mask: Union[str, List[str]] = ""
@field_serializer("mask", when_used="json")
def serialize_mask(self, value: Any, info):
return self.raw_mask
@field_serializer("raw_mask", when_used="json")
def serialize_raw_mask(self, value: Any, info):
return None
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class RuntimeMotionConfig(MotionConfig):
raw_mask: Union[str, List[str]] = ""
mask: np.ndarray = None
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def __init__(self, **config):
frame_shape = config.get("frame_shape", (1, 1))
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mask = get_relative_coordinates(config.get("mask", ""), frame_shape)
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config["raw_mask"] = mask
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if mask:
config["mask"] = create_mask(frame_shape, mask)
else:
empty_mask = np.zeros(frame_shape, np.uint8)
empty_mask[:] = 255
config["mask"] = empty_mask
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super().__init__(**config)
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def dict(self, **kwargs):
ret = super().model_dump(**kwargs)
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if "mask" in ret:
ret["mask"] = ret["raw_mask"]
ret.pop("raw_mask")
return ret
@field_serializer("mask", when_used="json")
def serialize_mask(self, value: Any, info):
return self.raw_mask
@field_serializer("raw_mask", when_used="json")
def serialize_raw_mask(self, value: Any, info):
return None
model_config = ConfigDict(arbitrary_types_allowed=True, extra="ignore")
class StationaryMaxFramesConfig(FrigateBaseModel):
default: Optional[int] = Field(None, title="Default max frames.", ge=1)
objects: Dict[str, int] = Field(
default_factory=dict, title="Object specific max frames."
)
class StationaryConfig(FrigateBaseModel):
interval: Optional[int] = Field(
None,
title="Frame interval for checking stationary objects.",
gt=0,
)
threshold: Optional[int] = Field(
None,
title="Number of frames without a position change for an object to be considered stationary",
ge=1,
)
max_frames: StationaryMaxFramesConfig = Field(
default_factory=StationaryMaxFramesConfig,
title="Max frames for stationary objects.",
)
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class DetectConfig(FrigateBaseModel):
height: Optional[int] = Field(
None, title="Height of the stream for the detect role."
)
width: Optional[int] = Field(None, title="Width of the stream for the detect role.")
fps: int = Field(
default=5, title="Number of frames per second to process through detection."
)
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enabled: bool = Field(default=True, title="Detection Enabled.")
min_initialized: Optional[int] = Field(
None,
title="Minimum number of consecutive hits for an object to be initialized by the tracker.",
)
max_disappeared: Optional[int] = Field(
None,
title="Maximum number of frames the object can disappear before detection ends.",
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)
stationary: StationaryConfig = Field(
default_factory=StationaryConfig,
title="Stationary objects config.",
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)
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annotation_offset: int = Field(
default=0, title="Milliseconds to offset detect annotations by."
)
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class FilterConfig(FrigateBaseModel):
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min_area: int = Field(
default=0, title="Minimum area of bounding box for object to be counted."
)
max_area: int = Field(
default=24000000, title="Maximum area of bounding box for object to be counted."
)
min_ratio: float = Field(
default=0,
title="Minimum ratio of bounding box's width/height for object to be counted.",
)
max_ratio: float = Field(
default=24000000,
title="Maximum ratio of bounding box's width/height for object to be counted.",
)
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threshold: float = Field(
default=0.7,
title="Average detection confidence threshold for object to be counted.",
)
min_score: float = Field(
default=0.5, title="Minimum detection confidence for object to be counted."
)
mask: Optional[Union[str, List[str]]] = Field(
None,
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title="Detection area polygon mask for this filter configuration.",
)
raw_mask: Union[str, List[str]] = ""
@field_serializer("mask", when_used="json")
def serialize_mask(self, value: Any, info):
return self.raw_mask
@field_serializer("raw_mask", when_used="json")
def serialize_raw_mask(self, value: Any, info):
return None
class AudioFilterConfig(FrigateBaseModel):
threshold: float = Field(
default=0.8,
ge=AUDIO_MIN_CONFIDENCE,
lt=1.0,
title="Minimum detection confidence threshold for audio to be counted.",
)
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class RuntimeFilterConfig(FilterConfig):
mask: Optional[np.ndarray] = None
raw_mask: Optional[Union[str, List[str]]] = None
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def __init__(self, **config):
frame_shape = config.get("frame_shape", (1, 1))
mask = get_relative_coordinates(config.get("mask"), frame_shape)
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config["raw_mask"] = mask
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if mask is not None:
config["mask"] = create_mask(frame_shape, mask)
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super().__init__(**config)
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def dict(self, **kwargs):
ret = super().model_dump(**kwargs)
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if "mask" in ret:
ret["mask"] = ret["raw_mask"]
ret.pop("raw_mask")
return ret
model_config = ConfigDict(arbitrary_types_allowed=True, extra="ignore")
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# this uses the base model because the color is an extra attribute
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class ZoneConfig(BaseModel):
filters: Dict[str, FilterConfig] = Field(
default_factory=dict, title="Zone filters."
)
coordinates: Union[str, List[str]] = Field(
title="Coordinates polygon for the defined zone."
)
inertia: int = Field(
default=3,
title="Number of consecutive frames required for object to be considered present in the zone.",
gt=0,
)
loitering_time: int = Field(
default=0,
ge=0,
title="Number of seconds that an object must loiter to be considered in the zone.",
)
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objects: Union[str, List[str]] = Field(
default_factory=list,
title="List of objects that can trigger the zone.",
)
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_color: Optional[Tuple[int, int, int]] = PrivateAttr()
_contour: np.ndarray = PrivateAttr()
@property
def color(self) -> Tuple[int, int, int]:
return self._color
@property
def contour(self) -> np.ndarray:
return self._contour
@field_validator("objects", mode="before")
@classmethod
def validate_objects(cls, v):
if isinstance(v, str) and "," not in v:
return [v]
return v
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def __init__(self, **config):
super().__init__(**config)
self._color = config.get("color", (0, 0, 0))
self._contour = config.get("contour", np.array([]))
def generate_contour(self, frame_shape: tuple[int, int]):
coordinates = self.coordinates
# masks and zones are saved as relative coordinates
# we know if any points are > 1 then it is using the
# old native resolution coordinates
if isinstance(coordinates, list):
explicit = any(p.split(",")[0] > "1.0" for p in coordinates)
try:
self._contour = np.array(
[
(
[int(p.split(",")[0]), int(p.split(",")[1])]
if explicit
else [
int(float(p.split(",")[0]) * frame_shape[1]),
int(float(p.split(",")[1]) * frame_shape[0]),
]
)
for p in coordinates
]
)
except ValueError:
raise ValueError(
f"Invalid coordinates found in configuration file. Coordinates must be relative (between 0-1): {coordinates}"
)
if explicit:
self.coordinates = ",".join(
[
f'{round(int(p.split(",")[0]) / frame_shape[1], 3)},{round(int(p.split(",")[1]) / frame_shape[0], 3)}'
for p in coordinates
]
)
elif isinstance(coordinates, str):
points = coordinates.split(",")
explicit = any(p > "1.0" for p in points)
try:
self._contour = np.array(
[
(
[int(points[i]), int(points[i + 1])]
if explicit
else [
int(float(points[i]) * frame_shape[1]),
int(float(points[i + 1]) * frame_shape[0]),
]
)
for i in range(0, len(points), 2)
]
)
except ValueError:
raise ValueError(
f"Invalid coordinates found in configuration file. Coordinates must be relative (between 0-1): {coordinates}"
)
if explicit:
self.coordinates = ",".join(
[
f"{round(int(points[i]) / frame_shape[1], 3)},{round(int(points[i + 1]) / frame_shape[0], 3)}"
for i in range(0, len(points), 2)
]
)
else:
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self._contour = np.array([])
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class ObjectConfig(FrigateBaseModel):
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track: List[str] = Field(default=DEFAULT_TRACKED_OBJECTS, title="Objects to track.")
filters: Dict[str, FilterConfig] = Field(default={}, title="Object filters.")
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mask: Union[str, List[str]] = Field(default="", title="Object mask.")
class AlertsConfig(FrigateBaseModel):
"""Configure alerts"""
labels: List[str] = Field(
default=DEFAULT_ALERT_OBJECTS, title="Labels to create alerts for."
)
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required_zones: Union[str, List[str]] = Field(
default_factory=list,
title="List of required zones to be entered in order to save the event as an alert.",
)
@field_validator("required_zones", mode="before")
@classmethod
def validate_required_zones(cls, v):
if isinstance(v, str) and "," not in v:
return [v]
return v
class DetectionsConfig(FrigateBaseModel):
"""Configure detections"""
labels: Optional[List[str]] = Field(
default=None, title="Labels to create detections for."
)
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required_zones: Union[str, List[str]] = Field(
default_factory=list,
title="List of required zones to be entered in order to save the event as a detection.",
)
@field_validator("required_zones", mode="before")
@classmethod
def validate_required_zones(cls, v):
if isinstance(v, str) and "," not in v:
return [v]
return v
class ReviewConfig(FrigateBaseModel):
"""Configure reviews"""
alerts: AlertsConfig = Field(
default_factory=AlertsConfig, title="Review alerts config."
)
detections: DetectionsConfig = Field(
default_factory=DetectionsConfig, title="Review detections config."
)
class SemanticSearchConfig(FrigateBaseModel):
enabled: bool = Field(default=False, title="Enable semantic search.")
reindex: Optional[bool] = Field(
default=False, title="Reindex all detections on startup."
)
class GenAIProviderEnum(str, Enum):
openai = "openai"
gemini = "gemini"
ollama = "ollama"
class GenAIConfig(FrigateBaseModel):
enabled: bool = Field(default=False, title="Enable GenAI.")
provider: GenAIProviderEnum = Field(
default=GenAIProviderEnum.openai, title="GenAI provider."
)
base_url: Optional[str] = Field(None, title="Provider base url.")
api_key: Optional[str] = Field(None, title="Provider API key.")
model: str = Field(default="gpt-4o", title="GenAI model.")
prompt: str = Field(
default="Describe the {label} in the sequence of images with as much detail as possible. Do not describe the background.",
title="Default caption prompt.",
)
object_prompts: Dict[str, str] = Field(default={}, title="Object specific prompts.")
class GenAICameraConfig(FrigateBaseModel):
enabled: bool = Field(default=False, title="Enable GenAI for camera.")
class AudioConfig(FrigateBaseModel):
enabled: bool = Field(default=False, title="Enable audio events.")
max_not_heard: int = Field(
default=30, title="Seconds of not hearing the type of audio to end the event."
)
min_volume: int = Field(
default=500, title="Min volume required to run audio detection."
)
listen: List[str] = Field(
default=DEFAULT_LISTEN_AUDIO, title="Audio to listen for."
)
filters: Optional[Dict[str, AudioFilterConfig]] = Field(
None, title="Audio filters."
)
enabled_in_config: Optional[bool] = Field(
None, title="Keep track of original state of audio detection."
)
num_threads: int = Field(default=2, title="Number of detection threads", ge=1)
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class BirdseyeModeEnum(str, Enum):
objects = "objects"
motion = "motion"
continuous = "continuous"
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@classmethod
def get_index(cls, type):
return list(cls).index(type)
@classmethod
def get(cls, index):
return list(cls)[index]
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class BirdseyeLayoutConfig(FrigateBaseModel):
scaling_factor: float = Field(
default=2.0, title="Birdseye Scaling Factor", ge=1.0, le=5.0
)
max_cameras: Optional[int] = Field(default=None, title="Max cameras")
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class BirdseyeConfig(FrigateBaseModel):
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enabled: bool = Field(default=True, title="Enable birdseye view.")
restream: bool = Field(default=False, title="Restream birdseye via RTSP.")
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width: int = Field(default=1280, title="Birdseye width.")
height: int = Field(default=720, title="Birdseye height.")
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quality: int = Field(
default=8,
title="Encoding quality.",
ge=1,
le=31,
)
inactivity_threshold: int = Field(
default=30, title="Birdseye Inactivity Threshold", gt=0
)
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mode: BirdseyeModeEnum = Field(
default=BirdseyeModeEnum.objects, title="Tracking mode."
)
layout: BirdseyeLayoutConfig = Field(
default_factory=BirdseyeLayoutConfig, title="Birdseye Layout Config"
)
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# uses BaseModel because some global attributes are not available at the camera level
class BirdseyeCameraConfig(BaseModel):
enabled: bool = Field(default=True, title="Enable birdseye view for camera.")
order: int = Field(default=0, title="Position of the camera in the birdseye view.")
mode: BirdseyeModeEnum = Field(
default=BirdseyeModeEnum.objects, title="Tracking mode for camera."
)
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# Note: Setting threads to less than 2 caused several issues with recording segments
# https://github.com/blakeblackshear/frigate/issues/5659
FFMPEG_GLOBAL_ARGS_DEFAULT = ["-hide_banner", "-loglevel", "warning", "-threads", "2"]
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FFMPEG_INPUT_ARGS_DEFAULT = "preset-rtsp-generic"
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DETECT_FFMPEG_OUTPUT_ARGS_DEFAULT = [
"-threads",
"2",
"-f",
"rawvideo",
"-pix_fmt",
"yuv420p",
]
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RECORD_FFMPEG_OUTPUT_ARGS_DEFAULT = "preset-record-generic"
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class FfmpegOutputArgsConfig(FrigateBaseModel):
detect: Union[str, List[str]] = Field(
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default=DETECT_FFMPEG_OUTPUT_ARGS_DEFAULT,
title="Detect role FFmpeg output arguments.",
)
record: Union[str, List[str]] = Field(
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default=RECORD_FFMPEG_OUTPUT_ARGS_DEFAULT,
title="Record role FFmpeg output arguments.",
)
_force_record_hvc1: bool = PrivateAttr(default=False)
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class FfmpegConfig(FrigateBaseModel):
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global_args: Union[str, List[str]] = Field(
default=FFMPEG_GLOBAL_ARGS_DEFAULT, title="Global FFmpeg arguments."
)
hwaccel_args: Union[str, List[str]] = Field(
default="auto", title="FFmpeg hardware acceleration arguments."
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)
input_args: Union[str, List[str]] = Field(
default=FFMPEG_INPUT_ARGS_DEFAULT, title="FFmpeg input arguments."
)
output_args: FfmpegOutputArgsConfig = Field(
default_factory=FfmpegOutputArgsConfig,
title="FFmpeg output arguments per role.",
)
retry_interval: float = Field(
default=10.0,
title="Time in seconds to wait before FFmpeg retries connecting to the camera.",
)
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class CameraRoleEnum(str, Enum):
audio = "audio"
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record = "record"
detect = "detect"
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class CameraInput(FrigateBaseModel):
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path: str = Field(title="Camera input path.")
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roles: List[CameraRoleEnum] = Field(title="Roles assigned to this input.")
global_args: Union[str, List[str]] = Field(
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default_factory=list, title="FFmpeg global arguments."
)
hwaccel_args: Union[str, List[str]] = Field(
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default_factory=list, title="FFmpeg hardware acceleration arguments."
)
input_args: Union[str, List[str]] = Field(
default_factory=list, title="FFmpeg input arguments."
)
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class CameraFfmpegConfig(FfmpegConfig):
inputs: List[CameraInput] = Field(title="Camera inputs.")
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@field_validator("inputs")
@classmethod
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def validate_roles(cls, v):
roles = [role for i in v for role in i.roles]
roles_set = set(roles)
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if len(roles) > len(roles_set):
raise ValueError("Each input role may only be used once.")
if "detect" not in roles:
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raise ValueError("The detect role is required.")
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return v
class RetainConfig(FrigateBaseModel):
default: float = Field(default=10, title="Default retention period.")
mode: RetainModeEnum = Field(default=RetainModeEnum.motion, title="Retain mode.")
objects: Dict[str, float] = Field(
default_factory=dict, title="Object retention period."
)
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class SnapshotsConfig(FrigateBaseModel):
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enabled: bool = Field(default=False, title="Snapshots enabled.")
clean_copy: bool = Field(
default=True, title="Create a clean copy of the snapshot image."
)
timestamp: bool = Field(
default=False, title="Add a timestamp overlay on the snapshot."
)
bounding_box: bool = Field(
default=True, title="Add a bounding box overlay on the snapshot."
)
crop: bool = Field(default=False, title="Crop the snapshot to the detected object.")
required_zones: List[str] = Field(
default_factory=list,
title="List of required zones to be entered in order to save a snapshot.",
)
height: Optional[int] = Field(None, title="Snapshot image height.")
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retain: RetainConfig = Field(
default_factory=RetainConfig, title="Snapshot retention."
)
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quality: int = Field(
default=70,
title="Quality of the encoded jpeg (0-100).",
ge=0,
le=100,
)
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class ColorConfig(FrigateBaseModel):
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red: int = Field(default=255, ge=0, le=255, title="Red")
green: int = Field(default=255, ge=0, le=255, title="Green")
blue: int = Field(default=255, ge=0, le=255, title="Blue")
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class TimestampPositionEnum(str, Enum):
tl = "tl"
tr = "tr"
bl = "bl"
br = "br"
class TimestampEffectEnum(str, Enum):
solid = "solid"
shadow = "shadow"
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class TimestampStyleConfig(FrigateBaseModel):
position: TimestampPositionEnum = Field(
default=TimestampPositionEnum.tl, title="Timestamp position."
)
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format: str = Field(default=DEFAULT_TIME_FORMAT, title="Timestamp format.")
color: ColorConfig = Field(default_factory=ColorConfig, title="Timestamp color.")
thickness: int = Field(default=2, title="Timestamp thickness.")
effect: Optional[TimestampEffectEnum] = Field(None, title="Timestamp effect.")
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class CameraMqttConfig(FrigateBaseModel):
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enabled: bool = Field(default=True, title="Send image over MQTT.")
timestamp: bool = Field(default=True, title="Add timestamp to MQTT image.")
bounding_box: bool = Field(default=True, title="Add bounding box to MQTT image.")
crop: bool = Field(default=True, title="Crop MQTT image to detected object.")
height: int = Field(default=270, title="MQTT image height.")
required_zones: List[str] = Field(
default_factory=list,
title="List of required zones to be entered in order to send the image.",
)
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quality: int = Field(
default=70,
title="Quality of the encoded jpeg (0-100).",
ge=0,
le=100,
)
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class CameraLiveConfig(FrigateBaseModel):
stream_name: str = Field(default="", title="Name of restream to use as live view.")
height: int = Field(default=720, title="Live camera view height")
quality: int = Field(default=8, ge=1, le=31, title="Live camera view quality")
Add go2rtc and add restream role / live source (#4082) * Pull go2rtc dependency * Add go2rtc to local services and add to s6 * Add relay controller for go2rtc * Add restream role * Add restream role * Add restream to nginx * Add camera live source config * Disable RTMP by default and use restream * Use go2rtc for camera config * Fix go2rtc move * Start restream on frigate start * Send restream to camera level * Fix restream * Make sure jsmpeg works as expected * Make view rspect live size config * Tweak player options to fit live view * Adjust VideoPlayer to accept live option which disables irrelevant controls * Add multiple options from restream live view * Add base for webrtc option * Setup specific restream modules * Make mp4 the default streaming for now * Expose 8554 for rtsp relay from go2rtc * Formatting * Update docs to suggest new restream method. * Update docs to reflect restream role * Update docs to reflect restream role * Add webrtc player * Improvements to webRTC * Support webrtc * Cleanup * Adjust rtmp test and add restream test * Fix tests * Add restream tests * Add live view docs and show different options * Small docs tweak * Support all stream types * Update to beta 9 of go2rtc * Formatting * Make jsmpeg the default * Support wss if made from https * Support wss if made from https * Use onEffect * Set url outside onEffect * Fix passed deps * Update docs about required host mode * Try memo instead * Close websocket on changing camera * Formatting * Close pc connection * Set video source to null on cleanup * Use full path since go2rtc can't see PATH var * Adjust audio codec to enable browser audio by default * Cleanup stream creation * Add restream tests * Format tests * Mock requests * Adjust paths * Move stream configs to restream * Remove live source * Remove live config * Use live persistence for which view to use on each camera * Fix live sizes * Only use jsmpeg sizes for jsmpeg live * Set max live size * Remove access of live config * Add selector for live view source in web view * Remove RTMP from default list of roles * Update docs * Fix tests * Fix docs for live view modes * make default undefined to avoid race condition * Wait until camera source is loaded to avoid race condition * Fix tests * Add config to go2rtc * Work with config * Set full path for config * Set to use stun * Check for mounted file * Look for frigate-go2rtc * Update docs to reflect webRTC configuration. * Add link to go2rtc config * Update docs to be more clear * Update docs to be more clear * Update format Co-authored-by: Felipe Santos <felipecassiors@gmail.com> * Update live docs * Improve bash startup script * Add option to force audio compatibility * Formatting * Fix mapping * Fix broken link * Update go2rtc version * Get go2rtc webui working * Add support for mse * Remove mp4 option * Undo changes to video player * Update docs for new live view options * Make separate path for mse * Remove unused * Remove mp4 path * Try to get go2rtc proxy working * Try to get go2rtc proxy working * Remove unused callback * Allow websocket on restrea dashboard * Make mse default stream option * Fix mse sizing * don't assume roles is defined * Remove nginx mapping to go2rtc ui Co-authored-by: Felipe Santos <felipecassiors@gmail.com> Co-authored-by: Blake Blackshear <blakeb@blakeshome.com>
2022-11-02 12:36:09 +01:00
class RestreamConfig(BaseModel):
model_config = ConfigDict(extra="allow")
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class CameraUiConfig(FrigateBaseModel):
order: int = Field(default=0, title="Order of camera in UI.")
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dashboard: bool = Field(
default=True, title="Show this camera in Frigate dashboard UI."
)
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class CameraConfig(FrigateBaseModel):
name: Optional[str] = Field(None, title="Camera name.", pattern=REGEX_CAMERA_NAME)
enabled: bool = Field(default=True, title="Enable camera.")
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ffmpeg: CameraFfmpegConfig = Field(title="FFmpeg configuration for the camera.")
best_image_timeout: int = Field(
default=60,
title="How long to wait for the image with the highest confidence score.",
)
webui_url: Optional[str] = Field(
None,
title="URL to visit the camera directly from system page",
)
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zones: Dict[str, ZoneConfig] = Field(
default_factory=dict, title="Zone configuration."
)
record: RecordConfig = Field(
default_factory=RecordConfig, title="Record configuration."
)
live: CameraLiveConfig = Field(
default_factory=CameraLiveConfig, title="Live playback settings."
)
snapshots: SnapshotsConfig = Field(
default_factory=SnapshotsConfig, title="Snapshot configuration."
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)
mqtt: CameraMqttConfig = Field(
default_factory=CameraMqttConfig, title="MQTT configuration."
)
objects: ObjectConfig = Field(
default_factory=ObjectConfig, title="Object configuration."
)
review: ReviewConfig = Field(
default_factory=ReviewConfig, title="Review configuration."
)
genai: GenAICameraConfig = Field(
default_factory=GenAICameraConfig, title="Generative AI configuration."
)
audio: AudioConfig = Field(
default_factory=AudioConfig, title="Audio events configuration."
)
motion: Optional[MotionConfig] = Field(
None, title="Motion detection configuration."
)
detect: DetectConfig = Field(
default_factory=DetectConfig, title="Object detection configuration."
)
onvif: OnvifConfig = Field(
default_factory=OnvifConfig, title="Camera Onvif Configuration."
)
ui: CameraUiConfig = Field(
default_factory=CameraUiConfig, title="Camera UI Modifications."
)
birdseye: BirdseyeCameraConfig = Field(
default_factory=BirdseyeCameraConfig, title="Birdseye camera configuration."
)
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timestamp_style: TimestampStyleConfig = Field(
default_factory=TimestampStyleConfig, title="Timestamp style configuration."
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)
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_ffmpeg_cmds: List[Dict[str, List[str]]] = PrivateAttr()
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def __init__(self, **config):
# Set zone colors
if "zones" in config:
colors = generate_color_palette(len(config["zones"]))
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config["zones"] = {
name: {**z, "color": color}
for (name, z), color in zip(config["zones"].items(), colors)
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}
# add roles to the input if there is only one
if len(config["ffmpeg"]["inputs"]) == 1:
has_audio = "audio" in config["ffmpeg"]["inputs"][0].get("roles", [])
Add go2rtc and add restream role / live source (#4082) * Pull go2rtc dependency * Add go2rtc to local services and add to s6 * Add relay controller for go2rtc * Add restream role * Add restream role * Add restream to nginx * Add camera live source config * Disable RTMP by default and use restream * Use go2rtc for camera config * Fix go2rtc move * Start restream on frigate start * Send restream to camera level * Fix restream * Make sure jsmpeg works as expected * Make view rspect live size config * Tweak player options to fit live view * Adjust VideoPlayer to accept live option which disables irrelevant controls * Add multiple options from restream live view * Add base for webrtc option * Setup specific restream modules * Make mp4 the default streaming for now * Expose 8554 for rtsp relay from go2rtc * Formatting * Update docs to suggest new restream method. * Update docs to reflect restream role * Update docs to reflect restream role * Add webrtc player * Improvements to webRTC * Support webrtc * Cleanup * Adjust rtmp test and add restream test * Fix tests * Add restream tests * Add live view docs and show different options * Small docs tweak * Support all stream types * Update to beta 9 of go2rtc * Formatting * Make jsmpeg the default * Support wss if made from https * Support wss if made from https * Use onEffect * Set url outside onEffect * Fix passed deps * Update docs about required host mode * Try memo instead * Close websocket on changing camera * Formatting * Close pc connection * Set video source to null on cleanup * Use full path since go2rtc can't see PATH var * Adjust audio codec to enable browser audio by default * Cleanup stream creation * Add restream tests * Format tests * Mock requests * Adjust paths * Move stream configs to restream * Remove live source * Remove live config * Use live persistence for which view to use on each camera * Fix live sizes * Only use jsmpeg sizes for jsmpeg live * Set max live size * Remove access of live config * Add selector for live view source in web view * Remove RTMP from default list of roles * Update docs * Fix tests * Fix docs for live view modes * make default undefined to avoid race condition * Wait until camera source is loaded to avoid race condition * Fix tests * Add config to go2rtc * Work with config * Set full path for config * Set to use stun * Check for mounted file * Look for frigate-go2rtc * Update docs to reflect webRTC configuration. * Add link to go2rtc config * Update docs to be more clear * Update docs to be more clear * Update format Co-authored-by: Felipe Santos <felipecassiors@gmail.com> * Update live docs * Improve bash startup script * Add option to force audio compatibility * Formatting * Fix mapping * Fix broken link * Update go2rtc version * Get go2rtc webui working * Add support for mse * Remove mp4 option * Undo changes to video player * Update docs for new live view options * Make separate path for mse * Remove unused * Remove mp4 path * Try to get go2rtc proxy working * Try to get go2rtc proxy working * Remove unused callback * Allow websocket on restrea dashboard * Make mse default stream option * Fix mse sizing * don't assume roles is defined * Remove nginx mapping to go2rtc ui Co-authored-by: Felipe Santos <felipecassiors@gmail.com> Co-authored-by: Blake Blackshear <blakeb@blakeshome.com>
2022-11-02 12:36:09 +01:00
config["ffmpeg"]["inputs"][0]["roles"] = [
"record",
"detect",
]
if has_audio:
config["ffmpeg"]["inputs"][0]["roles"].append("audio")
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super().__init__(**config)
@property
def frame_shape(self) -> Tuple[int, int]:
return self.detect.height, self.detect.width
@property
def frame_shape_yuv(self) -> Tuple[int, int]:
return self.detect.height * 3 // 2, self.detect.width
@property
def ffmpeg_cmds(self) -> List[Dict[str, List[str]]]:
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return self._ffmpeg_cmds
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def create_ffmpeg_cmds(self):
if "_ffmpeg_cmds" in self:
return
ffmpeg_cmds = []
for ffmpeg_input in self.ffmpeg.inputs:
ffmpeg_cmd = self._get_ffmpeg_cmd(ffmpeg_input)
if ffmpeg_cmd is None:
continue
ffmpeg_cmds.append({"roles": ffmpeg_input.roles, "cmd": ffmpeg_cmd})
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self._ffmpeg_cmds = ffmpeg_cmds
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def _get_ffmpeg_cmd(self, ffmpeg_input: CameraInput):
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ffmpeg_output_args = []
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if "detect" in ffmpeg_input.roles:
detect_args = get_ffmpeg_arg_list(self.ffmpeg.output_args.detect)
scale_detect_args = parse_preset_hardware_acceleration_scale(
ffmpeg_input.hwaccel_args or self.ffmpeg.hwaccel_args,
detect_args,
self.detect.fps,
self.detect.width,
self.detect.height,
)
ffmpeg_output_args = scale_detect_args + ffmpeg_output_args + ["pipe:"]
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if "record" in ffmpeg_input.roles and self.record.enabled:
record_args = get_ffmpeg_arg_list(
parse_preset_output_record(
self.ffmpeg.output_args.record,
self.ffmpeg.output_args._force_record_hvc1,
)
or self.ffmpeg.output_args.record
)
ffmpeg_output_args = (
record_args
+ [f"{os.path.join(CACHE_DIR, self.name)}@{CACHE_SEGMENT_FORMAT}.mp4"]
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+ ffmpeg_output_args
)
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# if there arent any outputs enabled for this input
if len(ffmpeg_output_args) == 0:
return None
global_args = get_ffmpeg_arg_list(
ffmpeg_input.global_args or self.ffmpeg.global_args
)
camera_arg = (
self.ffmpeg.hwaccel_args if self.ffmpeg.hwaccel_args != "auto" else None
)
hwaccel_args = get_ffmpeg_arg_list(
parse_preset_hardware_acceleration_decode(
ffmpeg_input.hwaccel_args,
self.detect.fps,
self.detect.width,
self.detect.height,
)
or ffmpeg_input.hwaccel_args
or parse_preset_hardware_acceleration_decode(
camera_arg,
self.detect.fps,
self.detect.width,
self.detect.height,
)
or camera_arg
or []
)
input_args = get_ffmpeg_arg_list(
parse_preset_input(ffmpeg_input.input_args, self.detect.fps)
or ffmpeg_input.input_args
or parse_preset_input(self.ffmpeg.input_args, self.detect.fps)
or self.ffmpeg.input_args
)
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cmd = (
["ffmpeg"]
+ global_args
+ hwaccel_args
+ input_args
+ ["-i", escape_special_characters(ffmpeg_input.path)]
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+ ffmpeg_output_args
)
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return [part for part in cmd if part != ""]
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class DatabaseConfig(FrigateBaseModel):
path: str = Field(default=DEFAULT_DB_PATH, title="Database path.")
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class LogLevelEnum(str, Enum):
debug = "debug"
info = "info"
warning = "warning"
error = "error"
critical = "critical"
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class LoggerConfig(FrigateBaseModel):
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default: LogLevelEnum = Field(
default=LogLevelEnum.info, title="Default logging level."
)
logs: Dict[str, LogLevelEnum] = Field(
default_factory=dict, title="Log level for specified processes."
)
class CameraGroupConfig(FrigateBaseModel):
"""Represents a group of cameras."""
cameras: Union[str, List[str]] = Field(
default_factory=list, title="List of cameras in this group."
)
icon: str = Field(default="generic", title="Icon that represents camera group.")
order: int = Field(default=0, title="Sort order for group.")
@field_validator("cameras", mode="before")
@classmethod
def validate_cameras(cls, v):
if isinstance(v, str) and "," not in v:
return [v]
return v
def verify_config_roles(camera_config: CameraConfig) -> None:
"""Verify that roles are setup in the config correctly."""
assigned_roles = list(
set([r for i in camera_config.ffmpeg.inputs for r in i.roles])
)
if camera_config.record.enabled and "record" not in assigned_roles:
raise ValueError(
f"Camera {camera_config.name} has record enabled, but record is not assigned to an input."
)
if camera_config.audio.enabled and "audio" not in assigned_roles:
raise ValueError(
f"Camera {camera_config.name} has audio events enabled, but audio is not assigned to an input."
)
def verify_valid_live_stream_name(
frigate_config: FrigateConfig, camera_config: CameraConfig
) -> ValueError | None:
"""Verify that a restream exists to use for live view."""
if (
camera_config.live.stream_name
not in frigate_config.go2rtc.model_dump().get("streams", {}).keys()
):
return ValueError(
f"No restream with name {camera_config.live.stream_name} exists for camera {camera_config.name}."
)
def verify_recording_retention(camera_config: CameraConfig) -> None:
"""Verify that recording retention modes are ranked correctly."""
rank_map = {
RetainModeEnum.all: 0,
RetainModeEnum.motion: 1,
RetainModeEnum.active_objects: 2,
}
if (
camera_config.record.retain.days != 0
and rank_map[camera_config.record.retain.mode]
> rank_map[camera_config.record.alerts.retain.mode]
):
logger.warning(
f"{camera_config.name}: Recording retention is configured for {camera_config.record.retain.mode} and alert retention is configured for {camera_config.record.alerts.retain.mode}. The more restrictive retention policy will be applied."
)
if (
camera_config.record.retain.days != 0
and rank_map[camera_config.record.retain.mode]
> rank_map[camera_config.record.detections.retain.mode]
):
logger.warning(
f"{camera_config.name}: Recording retention is configured for {camera_config.record.retain.mode} and detection retention is configured for {camera_config.record.detections.retain.mode}. The more restrictive retention policy will be applied."
)
def verify_recording_segments_setup_with_reasonable_time(
camera_config: CameraConfig,
) -> None:
"""Verify that recording segments are setup and segment time is not greater than 60."""
record_args: list[str] = get_ffmpeg_arg_list(
camera_config.ffmpeg.output_args.record
)
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if record_args[0].startswith("preset"):
return
seg_arg_index = record_args.index("-segment_time")
if seg_arg_index < 0:
raise ValueError(
f"Camera {camera_config.name} has no segment_time in recording output args, segment args are required for record."
)
if int(record_args[seg_arg_index + 1]) > 60:
raise ValueError(
f"Camera {camera_config.name} has invalid segment_time output arg, segment_time must be 60 or less."
)
def verify_zone_objects_are_tracked(camera_config: CameraConfig) -> None:
"""Verify that user has not entered zone objects that are not in the tracking config."""
for zone_name, zone in camera_config.zones.items():
for obj in zone.objects:
if obj not in camera_config.objects.track:
raise ValueError(
f"Zone {zone_name} is configured to track {obj} but that object type is not added to objects -> track."
)
def verify_required_zones_exist(camera_config: CameraConfig) -> None:
for det_zone in camera_config.review.detections.required_zones:
if det_zone not in camera_config.zones.keys():
raise ValueError(
f"Camera {camera_config.name} has a required zone for detections {det_zone} that is not defined."
)
for det_zone in camera_config.review.alerts.required_zones:
if det_zone not in camera_config.zones.keys():
raise ValueError(
f"Camera {camera_config.name} has a required zone for alerts {det_zone} that is not defined."
)
def verify_autotrack_zones(camera_config: CameraConfig) -> ValueError | None:
"""Verify that required_zones are specified when autotracking is enabled."""
if (
camera_config.onvif.autotracking.enabled
and not camera_config.onvif.autotracking.required_zones
):
raise ValueError(
f"Camera {camera_config.name} has autotracking enabled, required_zones must be set to at least one of the camera's zones."
)
def verify_motion_and_detect(camera_config: CameraConfig) -> ValueError | None:
"""Verify that required_zones are specified when autotracking is enabled."""
if camera_config.detect.enabled and not camera_config.motion.enabled:
raise ValueError(
f"Camera {camera_config.name} has motion detection disabled and object detection enabled but object detection requires motion detection."
)
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class FrigateConfig(FrigateBaseModel):
mqtt: MqttConfig = Field(title="MQTT configuration.")
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database: DatabaseConfig = Field(
default_factory=DatabaseConfig, title="Database configuration."
)
tls: TlsConfig = Field(default_factory=TlsConfig, title="TLS configuration.")
proxy: ProxyConfig = Field(
default_factory=ProxyConfig, title="Proxy configuration."
)
auth: AuthConfig = Field(default_factory=AuthConfig, title="Auth configuration.")
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environment_vars: Dict[str, str] = Field(
default_factory=dict, title="Frigate environment variables."
)
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ui: UIConfig = Field(default_factory=UIConfig, title="UI configuration.")
notifications: NotificationConfig = Field(
default_factory=NotificationConfig, title="Notification Config"
)
telemetry: TelemetryConfig = Field(
default_factory=TelemetryConfig, title="Telemetry configuration."
)
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model: ModelConfig = Field(
default_factory=ModelConfig, title="Detection model configuration."
)
detectors: Dict[str, BaseDetectorConfig] = Field(
default=DEFAULT_DETECTORS,
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title="Detector hardware configuration.",
)
logger: LoggerConfig = Field(
default_factory=LoggerConfig, title="Logging configuration."
)
record: RecordConfig = Field(
default_factory=RecordConfig, title="Global record configuration."
)
snapshots: SnapshotsConfig = Field(
default_factory=SnapshotsConfig, title="Global snapshots configuration."
)
live: CameraLiveConfig = Field(
default_factory=CameraLiveConfig, title="Live playback settings."
)
go2rtc: RestreamConfig = Field(
Add go2rtc and add restream role / live source (#4082) * Pull go2rtc dependency * Add go2rtc to local services and add to s6 * Add relay controller for go2rtc * Add restream role * Add restream role * Add restream to nginx * Add camera live source config * Disable RTMP by default and use restream * Use go2rtc for camera config * Fix go2rtc move * Start restream on frigate start * Send restream to camera level * Fix restream * Make sure jsmpeg works as expected * Make view rspect live size config * Tweak player options to fit live view * Adjust VideoPlayer to accept live option which disables irrelevant controls * Add multiple options from restream live view * Add base for webrtc option * Setup specific restream modules * Make mp4 the default streaming for now * Expose 8554 for rtsp relay from go2rtc * Formatting * Update docs to suggest new restream method. * Update docs to reflect restream role * Update docs to reflect restream role * Add webrtc player * Improvements to webRTC * Support webrtc * Cleanup * Adjust rtmp test and add restream test * Fix tests * Add restream tests * Add live view docs and show different options * Small docs tweak * Support all stream types * Update to beta 9 of go2rtc * Formatting * Make jsmpeg the default * Support wss if made from https * Support wss if made from https * Use onEffect * Set url outside onEffect * Fix passed deps * Update docs about required host mode * Try memo instead * Close websocket on changing camera * Formatting * Close pc connection * Set video source to null on cleanup * Use full path since go2rtc can't see PATH var * Adjust audio codec to enable browser audio by default * Cleanup stream creation * Add restream tests * Format tests * Mock requests * Adjust paths * Move stream configs to restream * Remove live source * Remove live config * Use live persistence for which view to use on each camera * Fix live sizes * Only use jsmpeg sizes for jsmpeg live * Set max live size * Remove access of live config * Add selector for live view source in web view * Remove RTMP from default list of roles * Update docs * Fix tests * Fix docs for live view modes * make default undefined to avoid race condition * Wait until camera source is loaded to avoid race condition * Fix tests * Add config to go2rtc * Work with config * Set full path for config * Set to use stun * Check for mounted file * Look for frigate-go2rtc * Update docs to reflect webRTC configuration. * Add link to go2rtc config * Update docs to be more clear * Update docs to be more clear * Update format Co-authored-by: Felipe Santos <felipecassiors@gmail.com> * Update live docs * Improve bash startup script * Add option to force audio compatibility * Formatting * Fix mapping * Fix broken link * Update go2rtc version * Get go2rtc webui working * Add support for mse * Remove mp4 option * Undo changes to video player * Update docs for new live view options * Make separate path for mse * Remove unused * Remove mp4 path * Try to get go2rtc proxy working * Try to get go2rtc proxy working * Remove unused callback * Allow websocket on restrea dashboard * Make mse default stream option * Fix mse sizing * don't assume roles is defined * Remove nginx mapping to go2rtc ui Co-authored-by: Felipe Santos <felipecassiors@gmail.com> Co-authored-by: Blake Blackshear <blakeb@blakeshome.com>
2022-11-02 12:36:09 +01:00
default_factory=RestreamConfig, title="Global restream configuration."
)
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birdseye: BirdseyeConfig = Field(
default_factory=BirdseyeConfig, title="Birdseye configuration."
)
ffmpeg: FfmpegConfig = Field(
default_factory=FfmpegConfig, title="Global FFmpeg configuration."
)
objects: ObjectConfig = Field(
default_factory=ObjectConfig, title="Global object configuration."
)
review: ReviewConfig = Field(
default_factory=ReviewConfig, title="Review configuration."
)
semantic_search: SemanticSearchConfig = Field(
default_factory=SemanticSearchConfig, title="Semantic search configuration."
)
genai: GenAIConfig = Field(
default_factory=GenAIConfig, title="Generative AI configuration."
)
audio: AudioConfig = Field(
default_factory=AudioConfig, title="Global Audio events configuration."
)
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motion: Optional[MotionConfig] = Field(
None, title="Global motion detection configuration."
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)
detect: DetectConfig = Field(
default_factory=DetectConfig, title="Global object tracking configuration."
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)
cameras: Dict[str, CameraConfig] = Field(title="Camera configuration.")
camera_groups: Dict[str, CameraGroupConfig] = Field(
default_factory=dict, title="Camera group configuration"
)
timestamp_style: TimestampStyleConfig = Field(
default_factory=TimestampStyleConfig,
title="Global timestamp style configuration.",
)
version: Optional[str] = Field(default=None, title="Current config version.")
def runtime_config(self, plus_api: PlusApi = None) -> FrigateConfig:
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"""Merge camera config with globals."""
config = self.model_copy(deep=True)
# Proxy secret substitution
if config.proxy.auth_secret:
config.proxy.auth_secret = config.proxy.auth_secret.format(
**FRIGATE_ENV_VARS
)
# MQTT user/password substitutions
if config.mqtt.user or config.mqtt.password:
config.mqtt.user = config.mqtt.user.format(**FRIGATE_ENV_VARS)
config.mqtt.password = config.mqtt.password.format(**FRIGATE_ENV_VARS)
# GenAI substitution
if config.genai.api_key:
config.genai.api_key = config.genai.api_key.format(**FRIGATE_ENV_VARS)
# set default min_score for object attributes
for attribute in ALL_ATTRIBUTE_LABELS:
if not config.objects.filters.get(attribute):
config.objects.filters[attribute] = FilterConfig(min_score=0.7)
elif config.objects.filters[attribute].min_score == 0.5:
config.objects.filters[attribute].min_score = 0.7
# auto detect hwaccel args
if config.ffmpeg.hwaccel_args == "auto":
config.ffmpeg.hwaccel_args = auto_detect_hwaccel()
# Global config to propagate down to camera level
global_config = config.model_dump(
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include={
"audio": ...,
"birdseye": ...,
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"record": ...,
"snapshots": ...,
"live": ...,
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"objects": ...,
"review": ...,
"genai": {"enabled"},
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"motion": ...,
"detect": ...,
"ffmpeg": ...,
"timestamp_style": ...,
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},
exclude_unset=True,
)
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for name, camera in config.cameras.items():
merged_config = deep_merge(
camera.model_dump(exclude_unset=True), global_config
)
camera_config: CameraConfig = CameraConfig.model_validate(
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{"name": name, **merged_config}
)
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if camera_config.ffmpeg.hwaccel_args == "auto":
camera_config.ffmpeg.hwaccel_args = config.ffmpeg.hwaccel_args
for input in camera_config.ffmpeg.inputs:
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need_record_fourcc = False and "record" in input.roles
need_detect_dimensions = "detect" in input.roles and (
camera_config.detect.height is None
or camera_config.detect.width is None
)
if need_detect_dimensions or need_record_fourcc:
stream_info = {"width": 0, "height": 0, "fourcc": None}
try:
stream_info = stream_info_retriever.get_stream_info(input.path)
except Exception:
logger.warn(
f"Error detecting stream parameters automatically for {input.path} Applying default values."
Feature: automatic camera resolution configuration (#6810) * Add auto configuration for height, width and fps in detect role * Add auto-configuration for detect width, height, and fps for input roles with detect in the CameraConfig class in config.py * Refactor code to retrieve video properties from input stream in CameraConfig class and add optional parameter to retrieve video duration in get_video_properties function * format * Set default detect dimensions to 1280x720 and update DetectConfig to use the defaults * Revert "Set default detect dimensions to 1280x720 and update DetectConfig to use the defaults" This reverts commit a1aed0414d75a6db0a826c08359740764c4861e5. * Add default detect dimensions if autoconfiguration failed and log a warning message * fix warn message spelling on frigate/config.py Co-authored-by: Nicolas Mowen <nickmowen213@gmail.com> * Ensure detect height and width are not None before using them in camera configuration * docs: initial commit * rename streamInfo to stream_info Co-authored-by: Blake Blackshear <blakeb@blakeshome.com> * Apply suggestions from code review Co-authored-by: Nicolas Mowen <nickmowen213@gmail.com> * Update docs * handle case then get_video_properties returns 0x0 dimension * Set detect resolution based on stream properties if available, else apply default values * Update FrigateConfig to set default values for stream_info if resolution detection fails * Update camera detection dimensions based on stream information if available --------- Co-authored-by: Nicolas Mowen <nickmowen213@gmail.com> Co-authored-by: Blake Blackshear <blakeb@blakeshome.com>
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)
stream_info = {"width": 0, "height": 0, "fourcc": None}
if need_detect_dimensions:
camera_config.detect.width = (
stream_info["width"]
if stream_info.get("width")
else DEFAULT_DETECT_DIMENSIONS["width"]
)
camera_config.detect.height = (
stream_info["height"]
if stream_info.get("height")
else DEFAULT_DETECT_DIMENSIONS["height"]
)
if need_record_fourcc:
# Apple only supports HEVC if it is hvc1 (vs. hev1)
camera_config.ffmpeg.output_args._force_record_hvc1 = (
stream_info["fourcc"] == "hevc"
if stream_info.get("hevc")
else False
)
Feature: automatic camera resolution configuration (#6810) * Add auto configuration for height, width and fps in detect role * Add auto-configuration for detect width, height, and fps for input roles with detect in the CameraConfig class in config.py * Refactor code to retrieve video properties from input stream in CameraConfig class and add optional parameter to retrieve video duration in get_video_properties function * format * Set default detect dimensions to 1280x720 and update DetectConfig to use the defaults * Revert "Set default detect dimensions to 1280x720 and update DetectConfig to use the defaults" This reverts commit a1aed0414d75a6db0a826c08359740764c4861e5. * Add default detect dimensions if autoconfiguration failed and log a warning message * fix warn message spelling on frigate/config.py Co-authored-by: Nicolas Mowen <nickmowen213@gmail.com> * Ensure detect height and width are not None before using them in camera configuration * docs: initial commit * rename streamInfo to stream_info Co-authored-by: Blake Blackshear <blakeb@blakeshome.com> * Apply suggestions from code review Co-authored-by: Nicolas Mowen <nickmowen213@gmail.com> * Update docs * handle case then get_video_properties returns 0x0 dimension * Set detect resolution based on stream properties if available, else apply default values * Update FrigateConfig to set default values for stream_info if resolution detection fails * Update camera detection dimensions based on stream information if available --------- Co-authored-by: Nicolas Mowen <nickmowen213@gmail.com> Co-authored-by: Blake Blackshear <blakeb@blakeshome.com>
2023-07-14 13:56:03 +02:00
# Warn if detect fps > 10
if camera_config.detect.fps > 10:
logger.warning(
f"{camera_config.name} detect fps is set to {camera_config.detect.fps}. This does NOT need to match your camera's frame rate. High values could lead to reduced performance. Recommended value is 5."
)
# Default min_initialized configuration
min_initialized = int(camera_config.detect.fps / 2)
if camera_config.detect.min_initialized is None:
camera_config.detect.min_initialized = min_initialized
# Default max_disappeared configuration
max_disappeared = camera_config.detect.fps * 5
if camera_config.detect.max_disappeared is None:
camera_config.detect.max_disappeared = max_disappeared
# Default stationary_threshold configuration
stationary_threshold = camera_config.detect.fps * 10
if camera_config.detect.stationary.threshold is None:
camera_config.detect.stationary.threshold = stationary_threshold
# default to the stationary_threshold if not defined
if camera_config.detect.stationary.interval is None:
camera_config.detect.stationary.interval = stationary_threshold
# FFMPEG input substitution
for input in camera_config.ffmpeg.inputs:
input.path = input.path.format(**FRIGATE_ENV_VARS)
# ONVIF substitution
if camera_config.onvif.user or camera_config.onvif.password:
camera_config.onvif.user = camera_config.onvif.user.format(
**FRIGATE_ENV_VARS
)
camera_config.onvif.password = camera_config.onvif.password.format(
**FRIGATE_ENV_VARS
)
# set config pre-value
camera_config.audio.enabled_in_config = camera_config.audio.enabled
camera_config.record.enabled_in_config = camera_config.record.enabled
camera_config.onvif.autotracking.enabled_in_config = (
camera_config.onvif.autotracking.enabled
)
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# Add default filters
object_keys = camera_config.objects.track
if camera_config.objects.filters is None:
camera_config.objects.filters = {}
object_keys = object_keys - camera_config.objects.filters.keys()
for key in object_keys:
camera_config.objects.filters[key] = FilterConfig()
# Apply global object masks and convert masks to numpy array
for object, filter in camera_config.objects.filters.items():
if camera_config.objects.mask:
filter_mask = []
if filter.mask is not None:
filter_mask = (
filter.mask
if isinstance(filter.mask, list)
else [filter.mask]
)
object_mask = (
get_relative_coordinates(
(
camera_config.objects.mask
if isinstance(camera_config.objects.mask, list)
else [camera_config.objects.mask]
),
camera_config.frame_shape,
)
or []
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)
filter.mask = filter_mask + object_mask
# Set runtime filter to create masks
camera_config.objects.filters[object] = RuntimeFilterConfig(
frame_shape=camera_config.frame_shape,
**filter.model_dump(exclude_unset=True),
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)
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# Convert motion configuration
if camera_config.motion is None:
camera_config.motion = RuntimeMotionConfig(
frame_shape=camera_config.frame_shape
)
else:
camera_config.motion = RuntimeMotionConfig(
frame_shape=camera_config.frame_shape,
raw_mask=camera_config.motion.mask,
**camera_config.motion.model_dump(exclude_unset=True),
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)
camera_config.motion.enabled_in_config = camera_config.motion.enabled
# generate zone contours
if len(camera_config.zones) > 0:
for zone in camera_config.zones.values():
zone.generate_contour(camera_config.frame_shape)
# Set live view stream if none is set
if not camera_config.live.stream_name:
camera_config.live.stream_name = name
verify_config_roles(camera_config)
verify_valid_live_stream_name(config, camera_config)
verify_recording_retention(camera_config)
verify_recording_segments_setup_with_reasonable_time(camera_config)
verify_zone_objects_are_tracked(camera_config)
verify_required_zones_exist(camera_config)
verify_autotrack_zones(camera_config)
verify_motion_and_detect(camera_config)
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# generate the ffmpeg commands
camera_config.create_ffmpeg_cmds()
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config.cameras[name] = camera_config
# get list of unique enabled labels for tracking
enabled_labels = set(config.objects.track)
for _, camera in config.cameras.items():
enabled_labels.update(camera.objects.track)
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config.model.create_colormap(sorted(enabled_labels))
config.model.check_and_load_plus_model(plus_api)
for key, detector in config.detectors.items():
adapter = TypeAdapter(DetectorConfig)
model_dict = (
detector
if isinstance(detector, dict)
else detector.model_dump(warnings="none")
)
detector_config: DetectorConfig = adapter.validate_python(model_dict)
if detector_config.model is None:
detector_config.model = config.model.model_copy()
else:
path = detector_config.model.path
detector_config.model = config.model.model_copy()
detector_config.model.path = path
if "path" not in model_dict or len(model_dict.keys()) > 1:
logger.warning(
"Customizing more than a detector model path is unsupported."
)
merged_model = deep_merge(
detector_config.model.model_dump(exclude_unset=True, warnings="none"),
config.model.model_dump(exclude_unset=True, warnings="none"),
)
if "path" not in merged_model:
if detector_config.type == "cpu":
merged_model["path"] = "/cpu_model.tflite"
elif detector_config.type == "edgetpu":
merged_model["path"] = "/edgetpu_model.tflite"
detector_config.model = ModelConfig.model_validate(merged_model)
detector_config.model.check_and_load_plus_model(
plus_api, detector_config.type
)
detector_config.model.compute_model_hash()
config.detectors[key] = detector_config
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return config
@field_validator("cameras")
@classmethod
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def ensure_zones_and_cameras_have_different_names(cls, v: Dict[str, CameraConfig]):
zones = [zone for camera in v.values() for zone in camera.zones.keys()]
for zone in zones:
if zone in v.keys():
raise ValueError("Zones cannot share names with cameras")
return v
@classmethod
def parse_file(cls, config_file):
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with open(config_file) as f:
raw_config = f.read()
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if config_file.endswith(YAML_EXT):
config = load_config_with_no_duplicates(raw_config)
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elif config_file.endswith(".json"):
config = json.loads(raw_config)
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return cls.model_validate(config)
@classmethod
def parse_raw(cls, raw_config):
config = load_config_with_no_duplicates(raw_config)
return cls.model_validate(config)