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Application of artificial intelligence in trauma orthopedics: Limitation and prospects
Maryam Salimi1, Joshua A Parry1, Raha Shahrokhi2
1Department of Orthopaedic Surgery, Denver Health Medical Center, Denver, CO 80215, United States.
Abstract:
The varieties and capabilities of artificial intelligence and machine learning in orthopedic surgery are extensively expanding. One promising method is neural networks, emphasizing big data and computer-based learning systems to develop a statistical fracture-detecting model. It derives patterns and rules from outstanding amounts of data to analyze the probabilities of different outcomes using new sets of similar data. The sensitivity and specificity of machine learning in detecting fractures vary from previous studies. AI may be most promising in the diagnosis of less-obvious fractures that are more commonly missed. Future studies are necessary to develop more accurate and effective detection models that can be used clinically.

