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      A survey on deep learning in medical image analysis

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          Abstract

          Deep learning algorithms, in particular convolutional networks, have rapidly become a methodology of choice for analyzing medical images. This paper reviews the major deep learning concepts pertinent to medical image analysis and summarizes over 300 contributions to the field, most of which appeared in the last year. We survey the use of deep learning for image classification, object detection, segmentation, registration, and other tasks. Concise overviews are provided of studies per application area: neuro, retinal, pulmonary, digital pathology, breast, cardiac, abdominal, musculoskeletal. We end with a summary of the current state-of-the-art, a critical discussion of open challenges and directions for future research.

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          Author and article information

          Journal
          Medical Image Analysis
          Medical Image Analysis
          Elsevier BV
          13618415
          December 2017
          December 2017
          : 42
          :
          : 60-88
          Article
          10.1016/j.media.2017.07.005
          28778026
          28903a63-cc74-4649-b8b2-97650efc5185
          © 2017

          http://www.elsevier.com/tdm/userlicense/1.0/

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