updates
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@ -46,7 +46,7 @@ def detect(
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color_list = [[random.randint(0, 255), random.randint(0, 255), random.randint(0, 255)] for _ in range(len(classes))]
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for i, (path, img, img0) in enumerate(dataloader):
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print('image %g/%g: %s' % (i + 1, len(dataloader), path))
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print("%g/%g '%s': " % (i + 1, len(dataloader), path), end='')
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t = time.time()
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# Get detections
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@ -83,7 +83,7 @@ def detect(
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for i in unique_classes:
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n = (detections[:, -1].cpu() == i).sum()
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print('%g %ss' % (n, classes[int(i)]))
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print('%g %ss' % (n, classes[int(i)]), end=', ')
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for x1, y1, x2, y2, conf, cls_conf, cls_pred in detections:
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# Rescale coordinates to original dimensions
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@ -110,7 +110,7 @@ def detect(
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# Save generated image with detections
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cv2.imwrite(results_img_path.replace('.bmp', '.jpg').replace('.tif', '.jpg'), img)
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print('Done. (%.3fs)\n' % (time.time() - t))
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print(' Done. (%.3fs)' % (time.time() - t))
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if platform == 'darwin': # MacOS (local)
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os.system('open ' + output)
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@ -41,7 +41,7 @@ class load_images(): # for inference
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assert img0 is not None, 'Failed to load ' + img_path
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# Padded resize
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img, _, _, _ = resize_square(img0, height=self.height, color=(127.5, 127.5, 127.5))
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img, _, _, _ = letterbox(img0, height=self.height, color=(127.5, 127.5, 127.5))
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# Normalize RGB
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img = img[:, :, ::-1].transpose(2, 0, 1)
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@ -128,7 +128,7 @@ class load_images_and_labels(): # for training
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cv2.cvtColor(img_hsv, cv2.COLOR_HSV2BGR, dst=img)
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h, w, _ = img.shape
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img, ratio, padw, padh = resize_square(img, height=height, color=(127.5, 127.5, 127.5))
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img, ratio, padw, padh = letterbox(img, height=height, color=(127.5, 127.5, 127.5))
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# Load labels
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if os.path.isfile(label_path):
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@ -189,7 +189,7 @@ class load_images_and_labels(): # for training
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return self.nB # number of batches
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def resize_square(img, height=416, color=(0, 0, 0)): # resize a rectangular image to a padded square
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def letterbox(img, height=416, color=(0, 0, 0)): # resize a rectangular image to a padded square
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shape = img.shape[:2] # shape = [height, width]
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ratio = float(height) / max(shape) # ratio = old / new
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new_shape = [round(shape[0] * ratio), round(shape[1] * ratio)]
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@ -200,6 +200,16 @@ def resize_square(img, height=416, color=(0, 0, 0)): # resize a rectangular ima
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img = cv2.resize(img, (new_shape[1], new_shape[0]), interpolation=cv2.INTER_AREA) # resized, no border
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return cv2.copyMakeBorder(img, top, bottom, left, right, cv2.BORDER_CONSTANT, value=color), ratio, dw // 2, dh // 2
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def letterbox_undo(img, height=416, color=(0, 0, 0)): # resize a rectangular image to a padded square
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shape = img.shape[:2] # shape = [height, width]
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ratio = float(height) / max(shape) # ratio = old / new
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new_shape = [round(shape[0] * ratio), round(shape[1] * ratio)]
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dw = height - new_shape[1] # width padding
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dh = height - new_shape[0] # height padding
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top, bottom = dh // 2, dh - (dh // 2)
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left, right = dw // 2, dw - (dw // 2)
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img = cv2.resize(img, (new_shape[1], new_shape[0]), interpolation=cv2.INTER_AREA) # resized, no border
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return cv2.copyMakeBorder(img, top, bottom, left, right, cv2.BORDER_CONSTANT, value=color), ratio, dw // 2, dh // 2
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def random_affine(img, targets=None, degrees=(-10, 10), translate=(.1, .1), scale=(.9, 1.1), shear=(-2, 2),
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borderValue=(127.5, 127.5, 127.5)):
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