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main.py
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158
main.py
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import cv2
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import argparse
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import numpy as np
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class yolop():
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def __init__(self, confThreshold=0.25, nmsThreshold=0.5, objThreshold=0.45):
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with open('bdd100k.names', 'rt') as f:
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self.classes = f.read().rstrip('\n').split('\n') ###这个是在bdd100k数据集上训练的模型做opencv部署的,如果你在自己的数据集上训练出的模型做opencv部署,那么需要修改self.classes
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num_classes = len(self.classes)
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anchors = [[3,9,5,11,4,20], [7,18,6,39,12,31], [19,50,38,81,68,157]]
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self.nl = len(anchors)
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self.na = len(anchors[0]) // 2
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self.no = num_classes + 5
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self.stride = np.array([8., 16., 32.])
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self.anchor_grid = np.asarray(anchors, dtype=np.float32).reshape(self.nl, -1, 2)
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self.inpWidth = 640
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self.inpHeight = 640
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self.generate_grid()
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self.net = cv2.dnn.readNet('yolop.onnx')
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self.confThreshold = confThreshold
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self.nmsThreshold = nmsThreshold
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self.objThreshold = objThreshold
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self.mean = np.array([0.485, 0.456, 0.406], dtype=np.float32).reshape(1, 1, 3)
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self.std = np.array([0.229, 0.224, 0.225], dtype=np.float32).reshape(1, 1, 3)
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self.keep_ratio = True
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def generate_grid(self):
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self.grid = [np.zeros(1)] * self.nl
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self.length = []
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self.areas = []
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for i in range(self.nl):
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h, w = int(self.inpHeight/self.stride[i]), int(self.inpWidth/self.stride[i])
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self.length.append(int(self.na * h * w))
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self.areas.append(h*w)
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if self.grid[i].shape[2:4] != (h,w):
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self.grid[i] = self._make_grid(w, h)
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def _make_grid(self, nx=20, ny=20):
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xv, yv = np.meshgrid(np.arange(ny), np.arange(nx))
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return np.stack((xv, yv), 2).reshape((-1, 2)).astype(np.float32)
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def postprocess(self, frame, outs, newh, neww, padh, padw):
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frameHeight = frame.shape[0]
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frameWidth = frame.shape[1]
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ratioh, ratiow = frameHeight / newh, frameWidth / neww
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# Scan through all the bounding boxes output from the network and keep only the
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# ones with high confidence scores. Assign the box's class label as the class with the highest score.
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classIds = []
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confidences = []
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boxes = []
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for detection in outs:
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scores = detection[5:]
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classId = np.argmax(scores)
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confidence = scores[classId]
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if confidence > self.confThreshold and detection[4] > self.objThreshold:
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center_x = int((detection[0]-padw) * ratiow)
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center_y = int((detection[1]-padh) * ratioh)
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width = int(detection[2] * ratiow)
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height = int(detection[3] * ratioh)
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left = int(center_x - width / 2)
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top = int(center_y - height / 2)
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classIds.append(classId)
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confidences.append(float(confidence) * detection[4])
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boxes.append([left, top, width, height])
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# Perform non maximum suppression to eliminate redundant overlapping boxes with
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# lower confidences.
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indices = cv2.dnn.NMSBoxes(boxes, confidences, self.confThreshold, self.nmsThreshold)
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for i in indices:
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i = i[0]
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box = boxes[i]
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left = box[0]
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top = box[1]
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width = box[2]
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height = box[3]
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frame = self.drawPred(frame, classIds[i], confidences[i], left, top, left + width, top + height)
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return frame
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def drawPred(self, frame, classId, conf, left, top, right, bottom):
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# Draw a bounding box.
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cv2.rectangle(frame, (left, top), (right, bottom), (0, 0, 255), thickness=2)
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label = '%.2f' % conf
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label = '%s:%s' % (self.classes[classId], label)
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# Display the label at the top of the bounding box
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labelSize, baseLine = cv2.getTextSize(label, cv2.FONT_HERSHEY_SIMPLEX, 0.5, 1)
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top = max(top, labelSize[1])
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# cv.rectangle(frame, (left, top - round(1.5 * labelSize[1])), (left + round(1.5 * labelSize[0]), top + baseLine), (255,255,255), cv.FILLED)
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cv2.putText(frame, label, (left, top - 10), cv2.FONT_HERSHEY_SIMPLEX, 1, (0, 255, 0), thickness=1)
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return frame
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def resize_image(self, srcimg):
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padh, padw, newh, neww = 0, 0, self.inpHeight, self.inpWidth
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if self.keep_ratio and srcimg.shape[0] != srcimg.shape[1]:
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hw_scale = srcimg.shape[0] / srcimg.shape[1]
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if hw_scale > 1:
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newh, neww = self.inpHeight, int(self.inpWidth / hw_scale)
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img = cv2.resize(srcimg, (neww, newh), interpolation=cv2.INTER_AREA)
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padw = int((self.inpWidth - neww) * 0.5)
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img = cv2.copyMakeBorder(img, 0, 0, padw, self.inpWidth - neww - padw, cv2.BORDER_CONSTANT,
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value=0) # add border
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else:
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newh, neww = int(self.inpHeight * hw_scale), self.inpWidth
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img = cv2.resize(srcimg, (neww, newh), interpolation=cv2.INTER_AREA)
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padh = int((self.inpHeight - newh) * 0.5)
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img = cv2.copyMakeBorder(img, padh, self.inpHeight - newh - padh, 0, 0, cv2.BORDER_CONSTANT, value=0)
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else:
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img = cv2.resize(srcimg, (self.inpWidth, self.inpHeight), interpolation=cv2.INTER_AREA)
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return img, newh, neww, padh, padw
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def _normalize(self, img): ### c++: https://blog.csdn.net/wuqingshan2010/article/details/107727909
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img = img.astype(np.float32) / 255.0
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img = (img - self.mean) / self.std
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return img
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def detect(self, srcimg):
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img, newh, neww, padh, padw = self.resize_image(srcimg)
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img = self._normalize(img)
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blob = cv2.dnn.blobFromImage(img)
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# Sets the input to the network
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self.net.setInput(blob)
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# Runs the forward pass to get output of the output layers
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outs = self.net.forward(self.net.getUnconnectedOutLayersNames())
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# inference output
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outimg = srcimg.copy()
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drive_area_mask = outs[1][:, padh:(self.inpHeight - padh), padw:(self.inpWidth - padw)]
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seg_id = np.argmax(drive_area_mask, axis=0).astype(np.uint8)
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seg_id = cv2.resize(seg_id, (srcimg.shape[1], srcimg.shape[0]), interpolation=cv2.INTER_NEAREST)
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outimg[seg_id == 1] = [0, 255, 0]
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lane_line_mask = outs[2][:, padh:(self.inpHeight - padh), padw:(self.inpWidth - padw)]
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seg_id = np.argmax(lane_line_mask, axis=0).astype(np.uint8)
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seg_id = cv2.resize(seg_id, (srcimg.shape[1], srcimg.shape[0]), interpolation=cv2.INTER_NEAREST)
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outimg[seg_id == 1] = [255, 0, 0]
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det_out = outs[0]
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row_ind = 0
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for i in range(self.nl):
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det_out[row_ind:row_ind+self.length[i], 0:2] = (det_out[row_ind:row_ind+self.length[i], 0:2] * 2. - 0.5 + np.tile(self.grid[i],(self.na, 1))) * int(self.stride[i])
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det_out[row_ind:row_ind+self.length[i], 2:4] = (det_out[row_ind:row_ind+self.length[i], 2:4] * 2) ** 2 * np.repeat(self.anchor_grid[i], self.areas[i], axis=0)
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row_ind += self.length[i]
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outimg = self.postprocess(outimg, det_out, newh, neww, padh, padw)
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return outimg
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if __name__ == "__main__":
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parser = argparse.ArgumentParser()
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parser.add_argument("--imgpath", type=str, default='images/0ace96c3-48481887.jpg', help="image path")
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parser.add_argument('--confThreshold', default=0.25, type=float, help='class confidence')
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parser.add_argument('--nmsThreshold', default=0.45, type=float, help='nms iou thresh')
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parser.add_argument('--objThreshold', default=0.5, type=float, help='object confidence')
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args = parser.parse_args()
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yolonet = yolop(confThreshold=args.confThreshold, nmsThreshold=args.nmsThreshold, objThreshold=args.objThreshold)
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srcimg = cv2.imread(args.imgpath)
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outimg = yolonet.detect(srcimg)
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winName = 'Deep learning object detection in OpenCV'
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cv2.namedWindow(winName, 0)
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cv2.imshow(winName, outimg)
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cv2.waitKey(0)
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cv2.destroyAllWindows()
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