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detect_image.py
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from ctypes import *
import math
import random
import os
import cv2
import numpy as np
import time
import darknet
from datetime import datetime
import matplotlib.pyplot as plt
FLAGS = {
'HELMET_DRAW_ENABLED' : True,
'SAVE_ON_NEW_HEAD' : True,
'SHOW_ORIGINAL_IMAGE' : True,
'SHOW_FPS' : True
}
def resizeDetections(original_image_shape, network_image_size, detections):
resize_ratio = (original_image_shape[1]/network_image_size[0], original_image_shape[0]/network_image_size[1])
resized_detections = []
for detection in detections:
resized_detections.append(
(
detection[0],
detection[1],
(
detection[2][0] * resize_ratio[0],
detection[2][1] * resize_ratio[1],
detection[2][2] * resize_ratio[0],
detection[2][3] * resize_ratio[1]
)
)
)
return resized_detections
def convertBack(x, y, w, h):
xmin = int(round(x - (w / 2)))
xmax = int(round(x + (w / 2)))
ymin = int(round(y - (h / 2)))
ymax = int(round(y + (h / 2)))
return xmin, ymin, xmax, ymax
def cvDrawBoxes(detections, img):
for detection in detections:
x, y, w, h = detection[2][0],\
detection[2][1],\
detection[2][2],\
detection[2][3]
xmin, ymin, xmax, ymax = convertBack(
float(x), float(y), float(w), float(h))
pt1 = (xmin, ymin)
pt2 = (xmax, ymax)
cv2.rectangle(img, pt1, pt2, (0, 255, 0), 1)
cv2.putText(img,
detection[0].decode() +
" [" + str(round(detection[1] * 100, 2)) + "]",
(pt1[0], pt1[1] - 5), cv2.FONT_HERSHEY_SIMPLEX, 0.5,
[0, 255, 0], 2)
return img
netMain = None
metaMain = None
altNames = None
def YOLO(imagepath):
global metaMain, netMain, altNames
configPath = "./configs/yolov4-helmet-detection.cfg"
weightPath = "./configs/yolov4-helmet-detection.weights"
metaPath = "./configs/yolov4-helmet-detection.data"
if not os.path.exists(configPath):
raise ValueError("Invalid config path `" +
os.path.abspath(configPath)+"`")
if not os.path.exists(weightPath):
raise ValueError("Invalid weight path `" +
os.path.abspath(weightPath)+"`")
if not os.path.exists(metaPath):
raise ValueError("Invalid data file path `" +
os.path.abspath(metaPath)+"`")
if netMain is None:
netMain = darknet.load_net_custom(configPath.encode(
"ascii"), weightPath.encode("ascii"), 0, 1) # batch size = 1
if metaMain is None:
metaMain = darknet.load_meta(metaPath.encode("ascii"))
if altNames is None:
try:
with open(metaPath) as metaFH:
metaContents = metaFH.read()
import re
match = re.search("names *= *(.*)$", metaContents,
re.IGNORECASE | re.MULTILINE)
if match:
result = match.group(1)
else:
result = None
try:
if os.path.exists(result):
with open(result) as namesFH:
namesList = namesFH.read().strip().split("\n")
altNames = [x.strip() for x in namesList]
except TypeError:
pass
except Exception:
pass
if not os.path.exists("outputs"):
os.mkdir("outputs")
# load video file / streams
image = cv2.imread(imagepath)
print("Starting the YOLO loop...")
# Create an image we reuse for each detect
darknet_image = darknet.make_image(darknet.network_width(netMain),
darknet.network_height(netMain),3)
# network image size (416*416, ...)
network_image_size = (darknet.network_width(netMain),
darknet.network_height(netMain))
image_rgb = cv2.cvtColor(image, cv2.COLOR_BGR2RGB)
image_resized = cv2.resize(image_rgb,
network_image_size,
interpolation=cv2.INTER_LINEAR)
darknet.copy_image_from_bytes(darknet_image, image_resized.tobytes())
detections = darknet.detect_image(netMain,metaMain, darknet_image, thresh=0.25)
detections = resizeDetections(image.shape, network_image_size, detections)
detect_image = cvDrawBoxes(detections, image_rgb)
detect_image = cv2.cvtColor(detect_image, cv2.COLOR_BGR2RGB)
cv2.imshow("detected", detect_image)
cv2.imwrite("output.jpg", detect_image)
while True:
# press 'q' to quit
if cv2.waitKey(1) == ord('q'):
break
cv2.destroyAllWindows()
if __name__ == "__main__":
# file name goes here
YOLO("example.png")