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import gradio as gr | |
import cv2 | |
import requests | |
import os | |
import torch | |
import numpy as np | |
from ultralytics import YOLO | |
model = torch.hub.load('ultralytics/yolov5', 'yolov5l', pretrained=True) | |
path = [['image_0.jpg'], ['image_1.jpg']] | |
video_path = [['video_test.mp4']] | |
# area = [(25,430), (10, 515), (407,485), (750,425), (690,370)] | |
area = [(48,430), (18, 515), (407,485), (750,425), (690,370)] | |
total_space = 12 | |
count=0 | |
def show_preds_video(): | |
cap = cv2.VideoCapture('Video_1.mp4') | |
count=0 | |
while(cap.isOpened()): | |
ret, frame = cap.read() | |
if not ret: | |
break | |
count += 1 | |
if count % 2 != 0: | |
continue | |
frame=cv2.resize(frame,(1020,600)) | |
frame_copy = frame.copy() | |
Vehicle_cnt = 0 | |
results=model(frame) | |
for index, row in results.pandas().xyxy[0].iterrows(): | |
x1 = int(row['xmin']) | |
y1 = int(row['ymin']) | |
x2 = int(row['xmax']) | |
y2 = int(row['ymax']) | |
d=(row['name']) | |
cx=int(x1+x2)//2 | |
cy=int(y1+y2)//2 | |
if ('car' or 'truck') in d: | |
results = cv2.pointPolygonTest(np.array(area, np.int32), ((cx,cy)), False) | |
if results >0: | |
cv2.rectangle(frame_copy,(x1,y1),(x2,y2),(0,0,255),2) | |
cv2.putText(frame_copy,str(d),(x1,y1),cv2.FONT_HERSHEY_PLAIN,2,(255,255,0),2) | |
Vehicle_cnt += 1 | |
# elif ('truck') in d: | |
# results = cv2.pointPolygonTest(np.array(area, np.int32), ((cx,cy)), False) | |
# if results >0: | |
# cv2.rectangle(frame_copy,(x1,y1),(x2,y2),(0,0,255),2) | |
# cv2.putText(frame_copy,str(d),(x1,y1),cv2.FONT_HERSHEY_PLAIN,2,(255,0,0),2) | |
# truck_cnt += 1 | |
free_space = total_space - Vehicle_cnt | |
cv2.putText(frame_copy, ("Free space: " + str(free_space)), (50,50) ,cv2.FONT_HERSHEY_PLAIN,2,(0,255,0),2) | |
# cv2.putText(frame_copy, str(str(" car: ")+ str(car_cnt) + str(" truck: ") +str(truck_cnt)), (50,75) ,cv2.FONT_HERSHEY_PLAIN,2,(0,255,0),2) | |
cv2.putText(frame_copy, str(str("vehicles: ")+ str(Vehicle_cnt) ), (50,85) ,cv2.FONT_HERSHEY_PLAIN,2,(0,255,0),2) | |
cv2.polylines(frame_copy, [np.array(area, np.int32)], True, (0,255,0), 2) | |
# fps = cap.get(cv2.CAP_PROP_FPS) | |
# cv2.putText(frame_copy,str("fps: ") + str(np.round(fps,0)),(50,100),cv2.FONT_HERSHEY_PLAIN,2,(0,255,0),2) | |
yield cv2.cvtColor(frame_copy, cv2.COLOR_BGR2RGB) | |
inputs_video = [ | |
#gr.components.Video(type="filepath", label="Input Video"), | |
] | |
outputs_video = [ | |
gr.components.Image(type="numpy", label="Output Image"), | |
] | |
interface_video = gr.Interface( | |
fn=show_preds_video, | |
inputs=inputs_video, | |
outputs=outputs_video, | |
title="Parking space counter", | |
description="Click generate !!!'", | |
# examples=video_path, | |
cache_examples=False, | |
) | |
gr.TabbedInterface( | |
[interface_video], | |
tab_names=['Video inference'] | |
).queue().launch() |