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Artificial Convolutional Neural Network in Object Detection and Semantic Segmentation for Medical Imaging Analysis

Frontiers in Oncology · 2021 · Vol. 11 · pp. 638182–638182
Ruixin YangYingyan Yu

Abstract

In the era of digital medicine, a vast number of medical images are produced every day. There is a great demand for intelligent equipment for adjuvant diagnosis to assist medical doctors with different disciplines. With the development of artificial intelligence, the algorithms of convolutional neural network (CNN) progressed rapidly. CNN and its extension algorithms play important roles on medical imaging classification, object detection, and semantic segmentation. While medical imaging classification has been widely reported, the object detection and semantic segmentation of imaging are rarely described. In this review article, we introduce the progression of object detection and semantic segmentation in medical imaging study. We also discuss how to accurately define the location and boundary of diseases.

AI in cancer detectionRadiomics and Machine Learning in Medical ImagingCOVID-19 diagnosis using AIConvolutional neural networkSegmentationComputer scienceArtificial intelligenceMedical imagingImage segmentationObject detectionDeep learningObject (grammar)Pattern recognition (psychology)

Funding

  • National Natural Science Foundation of China
  • Science and Technology Commission of Shanghai Municipality
  • Shanghai Jiao Tong University
Citations
300
FWCI
29.11
field-weighted impact
References
47
Percentile
100%
vs. same field & year
Citations per year
References
Fully Convolutional Networks for Semantic Segmentation
IEEE Transactions on Pattern Analysis and Machine Intelligence · 2016 · 10,957 citations
DeepLab: Semantic Image Segmentation with Deep Convolutional Nets, Atrous Convolution, and Fully Connected CRFs
IEEE Transactions on Pattern Analysis and Machine Intelligence · 2017 · 21,645 citations
Deep learning
Nature · 2015 · 79,164 citations
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Artificial Convolutional Neural Network in Object Detection and Semantic Segmentation for Medical Imaging Analysis · Scinovex