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Pediatric Radiology: An Analysis of AI-Powered Bone Age Determination Methods

2025·2 Zitationen·NTU Journal of Engineering and TechnologyOpen Access
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2

Zitationen

2

Autoren

2025

Jahr

Abstract

Significant progress has been made in using artificial intelligence, especially deep learning, to help doctors evaluate the bone age of children in medical images. Traditional methods like the Leather Tanner-Whitehouse and Greulich-Pyle approaches have some issues with consistency and accuracy. But with AI, there's been a big shift. This review looks at how AI has changed bone age evaluation over time, making it easier and more reliable. It covers different AI systems used, from older semi-automated ones like HANDX to newer ones like BoneXpert. The review explains how these systems work, their pros and cons, and how well they perform. It's a helpful guide for scientists, doctors, and anyone interested in this field, covering both old and new AI-driven methods for evaluating bone age.

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Autoren

Institutionen

Themen

Forensic Anthropology and Bioarchaeology StudiesAutopsy Techniques and OutcomesArtificial Intelligence in Healthcare and Education
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