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Basic principles of AI simplified for a Medical Practitioner: Pearls and Pitfalls in Evaluating AI algorithms

Authors :
Deeksha, Bhalla
Anupama, Ramachandran
Krithika, Rangarajan
Rohan, Dhanakshirur
Subhashis, Banerjee
Chetan, Arora
Source :
Current Problems in Diagnostic Radiology. 52:47-55
Publication Year :
2023
Publisher :
Elsevier BV, 2023.

Abstract

With the rapid integration of artificial intelligence into medical practice, there has been an exponential increase in the number of scientific papers and industry players offering models designed for various tasks. Understanding these, however, is difficult for a radiologist in practice, given the core mathematical principles and complicated terminology involved. This review aims to elucidate the core mathematical concepts of both machine learning and deep learning models, explaining the various steps and common terminology in common layman language. Thus, by the end of this article, the reader should be able to understand the basics of how prediction models are built and trained, including challenges faced and how to avoid them. The reader would also be equipped to adequately evaluate various models, and take a decision on whether a model is likely to perform adequately in the real-world setting.

Details

ISSN :
03630188
Volume :
52
Database :
OpenAIRE
Journal :
Current Problems in Diagnostic Radiology
Accession number :
edsair.doi.dedup.....737b7ee5f165ecb6090784e8c018e81f
Full Text :
https://doi.org/10.1067/j.cpradiol.2022.04.003