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Lensless-camera based machine learning for image classification

3 September 2017
Ganghun Kim
S. Kapetanovic
Rachael Palmer
R. Menon
    VLM
ArXiv (abs)PDFHTML
Abstract

Machine learning (ML) has been widely applied to image classification. Here, we extend this application to data generated by a camera comprised of only a standard CMOS image sensor with no lens. We first created a database of lensless images of handwritten digits. Then, we trained a ML algorithm on this dataset. Finally, we demonstrated that the trained ML algorithm is able to classify the digits with accuracy as high as 99% for 2 digits. Our approach clearly demonstrates the potential for non-human cameras in machine-based decision-making scenarios.

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