Preparation of image databases for artificial intelligence algorithm development in gastrointestinal endoscopy

Author:

Yang Chang BongORCID,Kim Sang HoonORCID,Lim Yun JeongORCID

Abstract

Over the past decade, technological advances in deep learning have led to the introduction of artificial intelligence (AI) in medical imaging. The most commonly used structure in image recognition is the convolutional neural network, which mimics the action of the human visual cortex. The applications of AI in gastrointestinal endoscopy are diverse. Computer-aided diagnosis has achieved remarkable outcomes with recent improvements in machine-learning techniques and advances in computer performance. Despite some hurdles, the implementation of AI-assisted clinical practice is expected to aid endoscopists in real-time decision-making. In this summary, we reviewed state-of-the-art AI in the field of gastrointestinal endoscopy and offered a practical guide for building a learning image dataset for algorithm development.

Funder

Korean Health Industry Development Institute

Ministry of Health and Welfare

Publisher

The Korean Society of Gastrointestinal Endoscopy

Subject

Gastroenterology,Radiology, Nuclear Medicine and imaging,Medicine (miscellaneous)

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