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Reviews: FishNet: A Versatile Backbone for Image, Region, and Pixel Level Prediction

Neural Information Processing Systems

If you provide more generous explanation on this ( corresponding images are much better), the revised one will be more complete and helpful for many practitioners in the community.


FishNet: A Versatile Backbone for Image, Region, and Pixel Level Prediction

Sun, Shuyang, Pang, Jiangmiao, Shi, Jianping, Yi, Shuai, Ouyang, Wanli

Neural Information Processing Systems

The basic principles in designing convolutional neural network (CNN) structures for predicting objects on different levels, e.g., image-level, region-level, and pixel-level, are diverging. Generally, network structures designed specifically for image classification are directly used as default backbone structure for other tasks including detection and segmentation, but there is seldom backbone structure designed under the consideration of unifying the advantages of networks designed for pixel-level or region-level predicting tasks, which may require very deep features with high resolution. Towards this goal, we design a fish-like network, called FishNet. In FishNet, the information of all resolutions is preserved and refined for the final task. Besides, we observe that existing works still cannot \emph{directly} propagate the gradient information from deep layers to shallow layers.