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2.
Journal of the Korean Radiological Society ; : 202-212, 2019.
Article in Korean | WPRIM | ID: wpr-916777

ABSTRACT

Recently, considerable progress has been made in interpreting perceptual information through artificial intelligence, allowing better interpretation of highly complex data by machines. Furthermore, the applications of artificial intelligence, represented by deep learning technology, to the fields of medical and biomedical research are increasing exponentially. In this article, we will explain the stages of deep learning algorithm development in the field of medical imaging, namely topic selection, data collection, data exploration and refinement, algorithm development, algorithm evaluation, and clinical application; we will also discuss the latest trends for each stage.

3.
Journal of the Korean Medical Association ; : 410-412, 2016.
Article in Korean | WPRIM | ID: wpr-224841

ABSTRACT

Artificial Intelligence (AI) to support the medical decision-making process has long been both an interest and concern of physicians and the public. However, the introduction of open source software, supercomputers, and a variety of industry innovations has accelerated the progress of the development of AI in clinical decision support systems. This article summarizes the current trends and challenges in the medical field, and presents how AI can improve healthcare systems by increasing efficiency and decreasing costs. At the same time, it emphasizes the centrality of the role of physicians in utilizing AI as a tool to supplement their decisions as they provide patient-oriented care.


Subject(s)
Artificial Intelligence , Clinical Decision-Making , Decision Support Systems, Clinical , Delivery of Health Care
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