Deep learning in gastric tissue diseases: a systematic review

Author:

Gonçalves Wanderson Gonçalves eORCID,Santos Marcelo Henrique de Paula dos,Lobato Fábio Manoel França,Ribeiro-dos-Santos Ândrea,Araújo Gilderlanio Santana deORCID

Abstract

BackgroundIn recent years, deep learning has gained remarkable attention in medical image analysis due to its capacity to provide results comparable to specialists and, in some cases, surpass them. Despite the emergence of deep learning research on gastric tissues diseases, few intensive reviews are addressing this topic.MethodWe performed a systematic review related to applications of deep learning in gastric tissue disease analysis by digital histology, endoscopy and radiology images.ConclusionsThis review highlighted the high potential and shortcomings in deep learning research studies applied to gastric cancer, ulcer, gastritis and non-malignant diseases. Our results demonstrate the effectiveness of gastric tissue analysis by deep learning applications. Moreover, we also identified gaps of evaluation metrics, and image collection availability, therefore, impacting experimental reproducibility.

Funder

Fundação Amazônia Paraense de Amparo à Pesquisa

Coordenação de Aperfeiçoamento de Pessoal de Nível Superior

Publisher

BMJ

Subject

Gastroenterology

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