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Deep learning in medical imaging and radiation therapy

Medical Physics · 2018 · Vol. 46(1) · pp. e1–e36
Berkman SahinerAria PezeshkLubomir M. HadjiiskiXiaosong WangKaren DrukkerH. KennyRonald M. SummersMaryellen L. Giger

Abstract

The goals of this review paper on deep learning (DL) in medical imaging and radiation therapy are to (a) summarize what has been achieved to date; (b) identify common and unique challenges, and strategies that researchers have taken to address these challenges; and (c) identify some of the promising avenues for the future both in terms of applications as well as technical innovations. We introduce the general principles of DL and convolutional neural networks, survey five major areas of application of DL in medical imaging and radiation therapy, identify common themes, discuss methods for dataset expansion, and conclude by summarizing lessons learned, remaining challenges, and future directions.

Radiomics and Machine Learning in Medical ImagingAI in cancer detectionCOVID-19 diagnosis using AIMedical imagingMedical radiationMedical physicistDeep learningMedical physicsRadiation therapyConvolutional neural networkComputer scienceArtificial intelligenceMedicine

MeSH terms

Deep LearningDiagnostic ImagingHumansImage Processing, Computer-AssistedRadiotherapyArtifactsSignal-To-Noise Ratio

Funding

  • U.S. Department of Energy
  • U.S. Department of Health and Human Services
  • Carestream Health
  • Nvidia
  • University of Chicago
  • Georgia Clinical and Translational Science Alliance
  • National Institutes of Health
  • U.S. Food and Drug Administration
  • Oak Ridge Institute for Science and Education
  • NIH Clinical Center
Citations
725
FWCI
56.91
field-weighted impact
References
413
Percentile
100%
vs. same field & year
Citations per year
Cited by
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