forked from BBing/mindspore
145 lines
5.4 KiB
Python
145 lines
5.4 KiB
Python
import argparse
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import os
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import cv2
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import numpy as np
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import torch
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from torchvision import models
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from pytorch_grad_cam import (
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GradCAM, HiResCAM, ScoreCAM, GradCAMPlusPlus,
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AblationCAM, XGradCAM, EigenCAM, EigenGradCAM,
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LayerCAM, FullGrad, GradCAMElementWise
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)
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from pytorch_grad_cam import GuidedBackpropReLUModel
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from pytorch_grad_cam.utils.image import (
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show_cam_on_image, deprocess_image, preprocess_image
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)
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from pytorch_grad_cam.utils.model_targets import ClassifierOutputTarget
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def get_args():
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parser = argparse.ArgumentParser()
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parser.add_argument('--device', type=str, default='cpu',
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help='Torch device to use')
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parser.add_argument(
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'--image-path',
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type=str,
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default='./examples/both.png',
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help='Input image path')
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parser.add_argument('--aug-smooth', action='store_true',
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help='Apply test time augmentation to smooth the CAM')
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parser.add_argument(
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'--eigen-smooth',
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action='store_true',
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help='Reduce noise by taking the first principle component'
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'of cam_weights*activations')
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parser.add_argument('--method', type=str, default='gradcam',
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choices=[
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'gradcam', 'hirescam', 'gradcam++',
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'scorecam', 'xgradcam', 'ablationcam',
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'eigencam', 'eigengradcam', 'layercam',
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'fullgrad', 'gradcamelementwise'
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],
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help='CAM method')
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parser.add_argument('--output-dir', type=str, default='output',
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help='Output directory to save the images')
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args = parser.parse_args()
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if args.device:
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print(f'Using device "{args.device}" for acceleration')
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else:
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print('Using CPU for computation')
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return args
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if __name__ == '__main__':
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""" python cam.py -image-path <path_to_image>
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Example usage of loading an image and computing:
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1. CAM
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2. Guided Back Propagation
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3. Combining both
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"""
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args = get_args()
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methods = {
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"gradcam": GradCAM,
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"hirescam": HiResCAM,
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"scorecam": ScoreCAM,
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"gradcam++": GradCAMPlusPlus,
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"ablationcam": AblationCAM,
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"xgradcam": XGradCAM,
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"eigencam": EigenCAM,
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"eigengradcam": EigenGradCAM,
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"layercam": LayerCAM,
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"fullgrad": FullGrad,
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"gradcamelementwise": GradCAMElementWise
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}
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model = models.resnet50(pretrained=True).to(torch.device(args.device)).eval()
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# Choose the target layer you want to compute the visualization for.
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# Usually this will be the last convolutional layer in the model.
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# Some common choices can be:
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# Resnet18 and 50: model.layer4
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# VGG, densenet161: model.features[-1]
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# mnasnet1_0: model.layers[-1]
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# You can print the model to help chose the layer
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# You can pass a list with several target layers,
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# in that case the CAMs will be computed per layer and then aggregated.
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# You can also try selecting all layers of a certain type, with e.g:
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# from pytorch_grad_cam.utils.find_layers import find_layer_types_recursive
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# find_layer_types_recursive(model, [torch.nn.ReLU])
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target_layers = [model.layer4]
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rgb_img = cv2.imread(args.image_path, 1)[:, :, ::-1]
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rgb_img = np.float32(rgb_img) / 255
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input_tensor = preprocess_image(rgb_img,
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mean=[0.485, 0.456, 0.406],
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std=[0.229, 0.224, 0.225]).to(args.device)
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# We have to specify the target we want to generate
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# the Class Activation Maps for.
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# If targets is None, the highest scoring category (for every member in the batch) will be used.
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# You can target specific categories by
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# targets = [ClassifierOutputTarget(281)]
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# targets = [ClassifierOutputTarget(281)]
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targets = None
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# Using the with statement ensures the context is freed, and you can
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# recreate different CAM objects in a loop.
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cam_algorithm = methods[args.method]
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with cam_algorithm(model=model,
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target_layers=target_layers) as cam:
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# AblationCAM and ScoreCAM have batched implementations.
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# You can override the internal batch size for faster computation.
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cam.batch_size = 32
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grayscale_cam = cam(input_tensor=input_tensor,
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targets=targets,
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aug_smooth=args.aug_smooth,
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eigen_smooth=args.eigen_smooth)
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grayscale_cam = grayscale_cam[0, :]
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cam_image = show_cam_on_image(rgb_img, grayscale_cam, use_rgb=True)
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cam_image = cv2.cvtColor(cam_image, cv2.COLOR_RGB2BGR)
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gb_model = GuidedBackpropReLUModel(model=model, device=args.device)
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gb = gb_model(input_tensor, target_category=None)
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cam_mask = cv2.merge([grayscale_cam, grayscale_cam, grayscale_cam])
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cam_gb = deprocess_image(cam_mask * gb)
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gb = deprocess_image(gb)
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os.makedirs(args.output_dir, exist_ok=True)
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cam_output_path = os.path.join(args.output_dir, f'{args.method}_cam.jpg')
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gb_output_path = os.path.join(args.output_dir, f'{args.method}_gb.jpg')
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cam_gb_output_path = os.path.join(args.output_dir, f'{args.method}_cam_gb.jpg')
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cv2.imwrite(cam_output_path, cam_image)
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cv2.imwrite(gb_output_path, gb)
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cv2.imwrite(cam_gb_output_path, cam_gb)
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