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      All-optical machine learning using diffractive deep neural networks

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      Science
      American Association for the Advancement of Science (AAAS)

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          Abstract

          Deep learning has been transforming our ability to execute advanced inference tasks using computers. We introduce a physical mechanism to perform machine learning by demonstrating an all-optical Diffractive Deep Neural Network (D2NN) architecture that can implement various functions following the deep learning-based design of passive diffractive layers that work collectively. We create 3D-printed D2NNs that implement classification of images of handwritten digits and fashion products as well as the function of an imaging lens at terahertz spectrum. Our all-optical deep learning framework can perform, at the speed of light, various complex functions that computer-based neural networks can implement, and will find applications in all-optical image analysis, feature detection and object classification, also enabling new camera designs and optical components that perform unique tasks using D2NNs.

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          Author and article information

          Journal
          Science
          Science
          American Association for the Advancement of Science (AAAS)
          0036-8075
          1095-9203
          September 06 2018
          September 07 2018
          September 07 2018
          July 26 2018
          : 361
          : 6406
          : 1004-1008
          Article
          10.1126/science.aat8084
          c8fb3096-64e3-4614-8c24-259223391a1f
          © 2018

          http://www.sciencemag.org/about/science-licenses-journal-article-reuse

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