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Compressed Domain Image Classification Using a Dynamic-Rate Neural Network

delete2020-01-01
delete24
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OA
AI
徐怡博 (Yibo Xu) *
W
Wei‐Di Liu
K
Kevin F. Kelly
DOI:10.1109/ACCESS.2020.3041807delete
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Abstract

Abstract

En 中文
Compressed domain image classification performs classification directly on compressive measurements acquired from the single-pixel camera, bypassing the image reconstruction step. It is of great importance for extending high-speed object detection and classification beyond the visible spectrum in a cost-effective manner especially for resource-limited platforms. Previous neural network methods require training a dedicated neural network for each different measurement rate (MR), which is costly in computation and storage. In this work, we develop an efficient training scheme that provides a neural network with dynamic-rate property, where a single neural network is capable of classifying over any MR within the range of interest with a given sensing matrix. This training scheme uses only a few selected MRs for training and the trained neural network is valid over the full range of MRs of interest. We demonstrate the performance of the dynamic-rate neural network on datasets of MNIST, CIFAR-10, Fashion-MNIST, COIL-100, and show that it generates approximately equal performance at each MR as that of a single-rate neural network valid only for one MR. Robustness to noise of the dynamic-rate model is also demonstrated. The dynamic-rate training scheme can be regarded as a general approach compatible with different types of sensing matrices, various neural network architectures, and is a valuable step towards wider adoption of compressive inference techniques and other compressive sensing related tasks via neural networks.
Keywords:
Sensors
Neural networks
Image coding
Training
Image reconstruction
Imaging
Mirrors
Compressive sensing
image classification
single-pixel camera
neural networks
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IEEE Access cover
IEEE Access
IF:
3.6
Papers:
9.8W
Citations:
29.4W

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Rice University
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Papers: 1.2W
Citations: 2.6W