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import argparse
import os
import dotenv
from pathlib import Path
argparser = None
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def set_argparse ( ) :
global argparser
if Path ( " .env " ) . is_file ( ) :
dotenv . load_dotenv ( )
print ( " Loaded .env file " )
else :
print ( " No .env file found " )
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# One important thing to consider is that most function parameters are optional and have a default value
# However, with argparse, those are never used since a argparse always passes something, even if it's None
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argparser = argparse . ArgumentParser (
prog = " Wyzely Detect " ,
description = " Recognize faces/objects in a video stream (from a webcam or a security camera) and send notifications to your devices " , # noqa: E501
epilog = " :) " ,
)
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video_options = argparser . add_argument_group ( " Video Options " )
stream_source = video_options . add_mutually_exclusive_group ( )
stream_source . add_argument (
" --rtsp-url " ,
default = os . environ [ " RTSP_URL " ]
if " RTSP_URL " in os . environ and os . environ [ " RTSP_URL " ] != " "
else None , # noqa: E501
type = str ,
help = " RTSP camera URL " ,
)
stream_source . add_argument (
" --capture-device " ,
default = os . environ [ " CAPTURE_DEVICE " ]
if " CAPTURE_DEVICE " in os . environ and os . environ [ " CAPTURE_DEVICE " ] != " "
else 0 , # noqa: E501
type = int ,
help = " Capture device number " ,
)
video_options . add_argument (
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" --run-scale " ,
# Set it to the env RUN_SCALE if it isn't blank, otherwise set it to 0.25
default = os . environ [ " RUN_SCALE " ]
if " RUN_SCALE " in os . environ and os . environ [ " RUN_SCALE " ] != " "
# else 0.25,
else 1 ,
type = float ,
help = " The scale to run the detection at, default is 0.25 " ,
)
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video_options . add_argument (
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" --view-scale " ,
# Set it to the env VIEW_SCALE if it isn't blank, otherwise set it to 0.75
default = os . environ [ " VIEW_SCALE " ]
if " VIEW_SCALE " in os . environ and os . environ [ " VIEW_SCALE " ] != " "
# else 0.75,
else 1 ,
type = float ,
help = " The scale to view the detection at, default is 0.75 " ,
)
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video_options . add_argument (
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" --no-display " ,
default = os . environ [ " NO_DISPLAY " ]
if " NO_DISPLAY " in os . environ and os . environ [ " NO_DISPLAY " ] != " "
else False ,
action = " store_true " ,
help = " Don ' t display the video feed " ,
)
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video_options . add_argument (
' -c ' ,
' --force-disable-tensorflow-gpu ' ,
default = os . environ [ " FORCE_DISABLE_TENSORFLOW_GPU " ]
if " FORCE_DISABLE_TENSORFLOW_GPU " in os . environ and os . environ [ " FORCE_DISABLE_TENSORFLOW_GPU " ] != " "
else False ,
action = " store_true " ,
help = " Force disable tensorflow GPU through env since sometimes it ' s not worth it to install cudnn and whatnot " ,
)
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notifcation_services = argparser . add_argument_group ( " Notification Services " )
notifcation_services . add_argument (
" --ntfy-url " ,
default = os . environ [ " NTFY_URL " ]
if " NTFY_URL " in os . environ and os . environ [ " NTFY_URL " ] != " "
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else None ,
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type = str ,
help = " The URL to send notifications to " ,
)
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# Various timers
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timers = argparser . add_argument_group ( " Timers " )
timers . add_argument (
" --detection-duration " ,
default = os . environ [ " DETECTION_DURATION " ]
if " DETECTION_DURATION " in os . environ and os . environ [ " DETECTION_DURATION " ] != " "
else 2 ,
type = int ,
help = " The duration (in seconds) that an object must be detected for before sending a notification " ,
)
timers . add_argument (
" --detection-window " ,
default = os . environ [ " DETECTION_WINDOW " ]
if " DETECTION_WINDOW " in os . environ and os . environ [ " DETECTION_WINDOW " ] != " "
else 15 ,
type = int ,
help = " The time (seconds) before the detection duration resets " ,
)
timers . add_argument (
" --notification-window " ,
default = os . environ [ " NOTIFICATION_WINDOW " ]
if " NOTIFICATION_WINDOW " in os . environ
and os . environ [ " NOTIFICATION_WINDOW " ] != " "
else 30 ,
type = int ,
help = " The time (seconds) before another notification can be sent " ,
)
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face_recognition = argparser . add_argument_group ( " Face Recognition options " )
face_recognition . add_argument (
" --faces-directory " ,
default = os . environ [ " FACES_DIRECTORY " ]
if " FACES_DIRECTORY " in os . environ and os . environ [ " FACES_DIRECTORY " ] != " "
else " faces " ,
type = str ,
help = " The directory to store the faces. Can either contain images or subdirectories with images, the latter being the preferred method " , # noqa: E501
)
face_recognition . add_argument (
" --face-confidence-threshold " ,
default = os . environ [ " FACE_CONFIDENCE_THRESHOLD " ]
if " FACE_CONFIDENCE_THRESHOLD " in os . environ
and os . environ [ " FACE_CONFIDENCE_THRESHOLD " ] != " "
else 0.3 ,
type = float ,
help = " The confidence (currently cosine similarity) threshold to use for face recognition " ,
)
face_recognition . add_argument (
" --no-remove-representations " ,
default = os . environ [ " NO_REMOVE_REPRESENTATIONS " ]
if " NO_REMOVE_REPRESENTATIONS " in os . environ
and os . environ [ " NO_REMOVE_REPRESENTATIONS " ] != " "
else False ,
action = " store_true " ,
help = " Don ' t remove representations_<model>.pkl at the start of the program. Greatly improves startup time, but doesn ' t take into account changes to the faces directory since it was created " , # noqa: E501
)
object_detection = argparser . add_argument_group ( " Object Detection options " )
object_detection . add_argument (
" --detect-object " ,
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action = " append " ,
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default = [ ] ,
type = str ,
help = " The object(s) to detect. Must be something the model is trained to detect " ,
)
object_detection . add_argument (
" --object-confidence-threshold " ,
default = os . environ [ " OBJECT_CONFIDENCE_THRESHOLD " ]
if " OBJECT_CONFIDENCE_THRESHOLD " in os . environ
and os . environ [ " OBJECT_CONFIDENCE_THRESHOLD " ] != " "
else 0.6 ,
type = float ,
help = " The confidence threshold to use " ,
)
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# return argparser
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# This will run when this file is imported
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set_argparse ( )