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sep 17, 2019 - Low-rank Embedding of Kernels in Convolutional Neural Networks under Random Shuffling (ICASSP 2019)

Description:

提出了 randomly-shuffled tensor decompo- sition (RsTD) based convolutional layer

不同于传统的 TD-based compression

shows that the kernel can be embedded into more general or even random low-rank subspaces.

结果:
基于 CIFAR-10 分类任务,RsTD 方法在压缩率jiao低(<0.01) 时,相对传统 TD 方法 ACC 更高。

Added to timeline:

7 Apr 2020

Date:

sep 17, 2019
Now
~ 4 years and 8 months ago