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  • title: Wavelet Feature Maps Compression for Image-to-Image CNNs
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            Wavelet Feature Maps Compression for Image-to-Image CNNs
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            Wavelet Feature Maps Compression for Image-to-Image CNNs

            Nov 28, 2022

            Speakers

            SEF

            Shahaf E. Finder

            Speaker · 0 followers

            YZ

            Yair Zohav

            Speaker · 0 followers

            MA

            Maor Ashkenazi

            Speaker · 0 followers

            About

            Convolutional Neural Networks (CNNs) are known for requiring extensive computational resources, and quantization is among the best and most common methods for compressing them. While aggressive quantization (i.e., less than 4-bits) performs well for classification, it may cause severe performance degradation in image-to-image tasks such as semantic segmentation and depth estimation. In this paper, we propose Wavelet Compressed Convolution (WCC)—a novel approach for high-resolution activation map…

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            NeurIPS 2022

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