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SA-MLP: Enhancing Point Cloud Classification with Efficient Addition and Shift Operations in MLP Architectures

By Qiang Zheng and others
This study addresses the computational inefficiencies in point cloud classification by introducing novel MLP-based architectures inspired by recent advances in CNN optimization. Traditional neural networks heavily rely on multiplication operations, which are computationally expensive. To tackle this, we propose Add-MLP and Shift-MLP, which replace multiplications with addition and shift operations,... Show more
September 3, 2024
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SA-MLP: Enhancing Point Cloud Classification with Efficient Addition and Shift Operations in MLP Architectures
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