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本仓库将使用Pytorch框架实现经典的图像分类网络、目标检测网络、图像分割网络,图像生成网络等,并会持续更新!!!
CVers 集合!!!
Image Classification
1. AlexNet
- [x] 论文地址:https://arxiv.org/abs/1404.5997
- [x] 论文详解:https://blog.csdn.net/qq_42735631/article/details/115800315
- [x] 模型代码: https://github.com/codecat0/CV/blob/main/Image_Classification/models/alexnet.py
2. VGGNet
- [x] 论文地址: https://arxiv.org/pdf/1409.1556.pdf
- [x] 论文详解: https://blog.csdn.net/qq_42735631/article/details/116071166
- [x] 模型代码: https://github.com/codecat0/CV/blob/main/Image_Classification/models/vggnet.py
3. GoogLeNet
- [x] 论文地址: http://arxiv.org/abs/1409.4842
- [x] 论文详解: https://blog.csdn.net/qq_42735631/article/details/116404840
- [x] 模型代码: https://github.com/codecat0/CV/blob/main/Image_Classification/models/googlenet.py
4. ResNet
- [x] 论文地址: https://arxiv.org/pdf/1512.03385.pdf
- [x] 论文详解: https://blog.csdn.net/qq_42735631/article/details/116803066
- [x] 模型代码: https://github.com/codecat0/CV/blob/main/Image_Classification/models/resnet.py
5. DenseNet
- [x] 论文地址: https://arxiv.org/pdf/1707.06990.pdf
- [x] 论文详解: https://blog.csdn.net/qq_42735631/article/details/116861074
- [x] 模型代码: https://github.com/codecat0/CV/blob/main/Image_Classification/models/densenet.py
6. MobileNet系列
6.1 MobileNet V1
- [x] 论文地址: https://arxiv.org/abs/1704.04861
- [x] 论文详解: https://blog.csdn.net/qq_42735631/article/details/121053364
- [ ] 模型代码
6.2 MobileNet V2
- [x] 论文地址: https://arxiv.org/abs/1801.04381
- [x] 论文详解: https://blog.csdn.net/qq_42735631/article/details/121053364
- [x] 模型代码: https://github.com/codecat0/CV/blob/main/Image_Classification/models/mobilenetv2.py
6.3 MobileNet V3
- [x] 论文地址: https://arxiv.org/abs/1905.02244
- [x] 论文详解: https://blog.csdn.net/qq_42735631/article/details/121053364
- [x] 模型代码: https://github.com/codecat0/CV/blob/main/Image_Classification/models/mobilenetv3.py
7. ShuffleNet系列
7.1 ShuffleNet V1
- [x] 论文地址: https://arxiv.org/abs/1707.01083
- [x] 论文详解: https://blog.csdn.net/qq_42735631/article/details/121064514
- [x] 模型代码: https://github.com/codecat0/CV/blob/main/Image_Classification/models/shufflenetv1.py
7.2 ShuffleNet V2
- [x] 论文地址: https://arxiv.org/abs/1807.11164
- [x] 论文详解: https://blog.csdn.net/qq_42735631/article/details/121064514
- [x] 模型代码: https://github.com/codecat0/CV/blob/main/Image_Classification/models/shufflenetv2.py
8. GhostNet
- [x] 论文地址: https://arxiv.org/abs/1911.11907
- [x] 论文详解: https://blog.csdn.net/qq_42735631/article/details/121065063
- [x] 模型代码: https://github.com/codecat0/CV/blob/main/Image_Classification/models/ghostnet.py
Object Detection
1. R-CNN
- [x] 论文地址: https://arxiv.org/abs/1311.2524
- [x] 论文详解: https://blog.csdn.net/qq_42735631/article/details/121147838
- [ ] 模型代码
2. Fast R-CNN
- [x] 论文地址: https://arxiv.org/abs/1504.08083
- [x] 论文详解: https://blog.csdn.net/qq_42735631/article/details/121151584
- [ ] 模型代码
3. Faster R-CNN
- [x] 论文地址: https://arxiv.org/abs/1506.01497
- [x] 论文详解: https://blog.csdn.net/qq_42735631/article/details/121164268
- [x] 模型代码: https://github.com/codecat0/CV/tree/main/Object_Detection/Faster_RCNN
4. SSD
- [x] 论文地址: https://arxiv.org/abs/1512.02325
- [x] 论文详解: https://blog.csdn.net/qq_42735631/article/details/121331064
- [x] 模型代码: https://github.com/codecat0/CV/tree/main/Object_Detection/SSD
5. YOLO系列
5.1 YOLOV1
- [x] 论文地址: https://arxiv.org/abs/1506.02640
- [x] 论文详解: https://blog.csdn.net/qq_42735631/article/details/121445432
- [ ] 模型代码
5.2 YOLOV2
- [x] 论文地址: https://arxiv.org/abs/1612.08242
- [x] 论文详解: https://blog.csdn.net/qq_42735631/article/details/121456856
- [ ] 模型代码
5.3 YOLOV3
- [x] 论文地址: https://arxiv.org/abs/1804.02767
- [x] 论文详解: https://blog.csdn.net/qq_42735631/article/details/121479035
- [x] 模型代码: https://github.com/codecat0/CV/tree/main/Object_Detection/YOLOV3
5.3 YOLOV4
- [x] 论文地址: https://arxiv.org/abs/2004.10934
- [x] 论文详解: https://blog.csdn.net/qq_42735631/article/details/121621972
- [x] 模型代码: https://github.com/codecat0/CV/tree/main/Object_Detection/YOLOV4
6. FPN
- [x] 论文地址: https://arxiv.org/abs/1612.03144
- [ ] 论文详解
- [ ] 模型代码
7. Mask R-CNN
- [ ] 论文地址
- [ ] 论文详解
- [ ] 模型代码
Semantic Segmentation
1. DeepLab系列
- [ ] 论文地址
- [ ] 论文详解
- [ ] 模型代码
2. U-Net
- [x] 论文地址: https://arxiv.org/abs/1505.04597
- [x] 论文详解: https://blog.csdn.net/qq_42735631/article/details/122182266?spm=1001.2014.3001.5501
- [x] 模型代码: https://github.com/codecat0/CV/tree/main/Semantic_Segmentation/UNet
3. FCN
- [x] 论文地址: https://www.cv-foundation.org/openaccess/content_cvpr_2015/papers/Long_Fully_Convolutional_Networks_2015_CVPR_paper.pdf
- [x] 论文详解: https://blog.csdn.net/qq_42735631/article/details/122247211?spm=1001.2014.3001.5501
- [x] 模型代码: https://github.com/codecat0/CV/tree/main/Semantic_Segmentation/FCN
4. RCF
- [ ] 论文地址
- [ ] 论文详解
- [ ] 模型代码
5. SegNet
- [x] 论文地址: https://arxiv.org/abs/1511.00561
- [x] 论文详解: https://blog.csdn.net/qq_42735631/article/details/122252894?spm=1001.2014.3001.5501
- [x] 模型代码: https://github.com/codecat0/CV/tree/main/Semantic_Segmentation/SegNet
6. PSPNet
- [x] 论文地址:https://arxiv.org/abs/1612.01105
- [x] 论文详解: https://blog.csdn.net/qq_42735631/article/details/122069409
- [x] 模型代码: https://github.com/codecat0/CV/tree/main/Semantic_Segmentation/PSPNet
Generative Models
1. AutoEncoder
- [ ] 论文地址
- [ ] 论文详解
- [ ] 模型代码
2. VAE
- [ ] 论文地址
- [ ] 论文详解
- [ ] 模型代码
3. GAN
- [ ] 论文地址
- [ ] 论文详解
- [ ] 模型代码
4. DCGAN
- [ ] 论文地址
- [ ] 论文详解
- [ ] 模型代码
5. CycleGAN
- [ ] 论文地址
- [ ] 论文详解
- [ ] 模型代码
6. WGAN
- [ ] 论文地址
- [ ] 论文详解
- [ ] 模型代码
7. StyleGAN
- [ ] 论文地址
- [ ] 论文详解
- [ ] 模型代码