Mabasej_Team/server/plugins/computer_vision/com_vision.py

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2021-05-09 12:01:50 +02:00
#! /usr/bin/python3
from picamera.array import PiRGBArray
from picamera import PiCamera
import time
import cv2
import imutils
import numpy as np
import requests
protopath = "MobileNetSSD_deploy.prototxt"
modelpath = "MobileNetSSD_deploy.caffemodel"
detector = cv2.dnn.readNetFromCaffe(prototxt=protopath, caffeModel=modelpath)
person_counter = 0
CLASSES = ["background", "aeroplane", "bicycle", "bird", "boat",
"bottle", "bus", "car", "cat", "chair", "cow", "diningtable",
"dog", "horse", "motorbike", "person", "pottedplant", "sheep",
"sofa", "train", "tvmonitor"]
# initialize the camera and grab a reference to the raw camera capture
camera = PiCamera()
rawCapture = PiRGBArray(camera)
# allow the camera to warmup
time.sleep(0.1)
# grab an image from the camera
while True:
camera.capture(rawCapture, format="bgr")
image = rawCapture.array
image = imutils.resize(image, width=1024, height=1024)
(H, W) = image.shape[:2]
blob = cv2.dnn.blobFromImage(image, 0.007843, (W, H), 127.5)
detector.setInput(blob)
person_detections = detector.forward()
for i in np.arange(0, person_detections.shape[2]):
confidence = person_detections[0, 0, i, 2]
if confidence > 0.2:
idx = int(person_detections[0, 0, i, 1])
if CLASSES[idx] == "person":
person_counter += 1
r = requests.post("http://127.0.0.1:8000/update_sensor", json={"name": "pocet ludi", "value": str(person_counter)})
time.sleep(60)