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Image Classification with A Deep Network Model based on Compressive Sensing

25 September 2014
Yufei Gan
Tong Zhuo
Chu He
ArXiv (abs)PDFHTML
Abstract

To simplify the parameter of the deep learning network, a cascaded compressive sensing model "CSNet" is implemented for image classification. Firstly, we use cascaded compressive sensing network to learn feature from the data. Secondly, CSNet generates the feature by binary hashing and block-wise histograms. Finally, a linear SVM classifier is used to classify these features. The experiments on the MNIST dataset indicate that higher classification accuracy can be obtained by this algorithm.

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