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"description": "# scratchai\n\n## Builds\n\n[](https://circleci.com/gh/iArunava/scratchai)\n\n## Documentation\n\nTable of Contents:\n\n1. Classification\n\n| Model | Paper | Implementation | Configurations |\n| :--- | :-----: | :--: | :--: |\n| Lenet | http://yann.lecun.com/exdb/publis/pdf/lecun-01a.pdf | [Implementation](https://github.com/iArunava/scratchai/blob/master/scratchai/nets/clf/lenet.py) | |\n| Alexnet | https://papers.nips.cc/paper/4824-imagenet-classification-with-deep-convolutional-neural-networks.pdf | [Implementation](https://github.com/iArunava/scratchai/blob/master/scratchai/nets/clf/alexnet.py) | |\n| VGG | https://arxiv.org/pdf/1409.1556.pdf | [Implementation](https://github.com/iArunava/scratchai/blob/master/scratchai/nets/clf/vgg.py) | VGG11, VGG11_BN, VGG13, VGG13_BN, VGG16_BN, VGG19, VGG19_BN, VGG_Dilated (For all the normal configurations) |\n| Resnet | https://arxiv.org/abs/1512.03385 | [Implementation](https://github.com/iArunava/scratchai/blob/master/scratchai/nets/clf/resnet.py#L117) | Resnet18, Resnet34, Resnet50, Resnet101, Resnet150, Resnet_dilated (For all the previous resnets) |\n| GoogLeNet | https://www.cs.unc.edu/~wliu/papers/GoogLeNet.pdf | [Implementation](https://github.com/iArunava/scratchai/blob/master/scratchai/nets/clf/googlenet.py) | |\n| Resnext | https://arxiv.org/abs/1611.05431 | NA | |\n\n2. Segmentation\n\n| Model | Paper | Implementation |\n| :--- | :-----: | :--: |\n| UNet | https://arxiv.org/abs/1505.04597 | [Implementation](https://github.com/iArunava/scratchai/blob/master/scratchai/nets/seg/unet.py#L38) [Not checked] |\n| ENet | https://arxiv.org/abs/1606.02147 | [Implementation](https://github.com/iArunava/scratchai/blob/master/scratchai/nets/seg/enet.py#L155) [Not checked] |\n\n3. Generative Adversarial Networks\n\n| Model | Paper | Implementation |\n| :--- | :-----: | :--: |\n| DCGAN | https://arxiv.org/abs/1511.06434 | NA |\n| CycleGAN | https://arxiv.org/abs/1703.10593 | [Implementation](https://github.com/iArunava/scratchai/blob/master/scratchai/nets/gans/cycle_gan.py) [Not checked] |\n\n4. Style Transfer\n\n| Model | Paper | Implementation |\n| :--- | :-----: | :--: |\n| Image Transformation Network Justin et al. | [Perceptual Losses Paper](https://cs.stanford.edu/people/jcjohns/papers/eccv16/JohnsonECCV16.pdf)
[Supplementary Material](https://cs.stanford.edu/people/jcjohns/papers/eccv16/JohnsonECCV16Supplementary.pdf) | [Implementation](https://github.com/iArunava/scratchai/blob/86d5011394592bde57eda40ba4682c8f26863b13/scratchai/nets/style_transfer/image_transformation_net.py#L75)\n\n5. Attacks\n\n| Attacks | Paper | Implementation |\n| :--- | :-----: | :--: |\n| Noise | NA | [Implementation](https://github.com/iArunava/scratchai/blob/master/scratchai/attacks/attacks/noise.py) |\n| Semantic | https://arxiv.org/abs/1703.06857 | [Implementation](https://github.com/iArunava/scratchai/blob/master/scratchai/attacks/attacks/semantic.py)\n| Saliency Map Method | https://arxiv.org/pdf/1511.07528.pdf | [Ongoing](https://github.com/iArunava/scratchai/blob/master/scratchai/attacks/attacks/saliency_map_method.py) |\n| Fast Gradient Method | https://arxiv.org/abs/1412.6572 | [Implementation](https://github.com/iArunava/scratchai/blob/master/scratchai/attacks/attacks/fast_gradient_method.py) |\n|Projected Gradient Descent | https://arxiv.org/pdf/1607.02533.pdf
https://arxiv.org/pdf/1706.06083.pdf | [Implementation](https://github.com/iArunava/scratchai/blob/master/scratchai/attacks/attacks/fast_gradient_method.py) |\n|DeepFool | https://arxiv.org/abs/1511.04599 [pdf](https://arxiv.org/pdf/1511.04599.pdf) | [Implementation](https://github.com/iArunava/scratchai/blob/master/scratchai/attacks/attacks/deepfool.py) |\n\n\n## Tutorials\n\nTutorials on how to get the most out of scratchai can be found here: https://github.com/iArunava/scratchai/tree/master/tutorials\n\nThese are ongoing list of tutorials and scratchai is looking for more and more contributions. If you are willing to contribute \nplease take a look at the `CONTRIBUTING.md` / open a issue.\n\n## License\nThe code under this repository is distributed under MIT License. Feel free to use it in your own work with proper citations to this repository.\n\n\n",
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