updates
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@ -376,14 +376,7 @@ class LoadImagesAndLabels(Dataset): # for training/testing
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# Cache images into memory for faster training (~5GB)
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if cache_images and augment: # if training
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for i in tqdm(range(min(len(self.img_files), 10000)), desc='Reading images'): # max 10k images
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img_path = self.img_files[i]
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img = cv2.imread(img_path) # BGR
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assert img is not None, 'Image Not Found ' + img_path
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r = self.img_size / max(img.shape) # size ratio
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if self.augment and r < 1: # if training (NOT testing), downsize to inference shape
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h, w = img.shape[:2]
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img = cv2.resize(img, (int(w * r), int(h * r)), interpolation=cv2.INTER_LINEAR) # or INTER_AREA
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self.imgs[i] = img
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self.imgs[i] = load_image(self, i)
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# Detect corrupted images https://medium.com/joelthchao/programmatically-detect-corrupted-image-8c1b2006c3d3
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detect_corrupted_images = False
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