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Applications of Machine Learning in Bone and Mineral Research
Endocrinology and Metabolism ; : 928-937, 2021.
Artigo em Inglês | WPRIM | ID: wpr-914267
ABSTRACT
In this unprecedented era of the overwhelming volume of medical data, machine learning can be a promising tool that may shed light on an individualized approach and a better understanding of the disease in the field of osteoporosis research, similar to that in other research fields. This review aimed to provide an overview of the latest studies using machine learning to address issues, mainly focusing on osteoporosis and fractures. Machine learning models for diagnosing and classifying osteoporosis and detecting fractures from images have shown promising performance. Fracture risk prediction is another promising field of research, and studies are being conducted using various data sources. However, these approaches may be biased due to the nature of the techniques or the quality of the data. Therefore, more studies based on the proposed guidelines are needed to improve the technical feasibility and generalizability of artificial intelligence algorithms.
Texto completo: DisponíveL Índice: WPRIM (Pacífico Ocidental) Tipo de estudo: Guia de Prática Clínica / Estudo prognóstico Idioma: Inglês Revista: Endocrinology and Metabolism Ano de publicação: 2021 Tipo de documento: Artigo

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Texto completo: DisponíveL Índice: WPRIM (Pacífico Ocidental) Tipo de estudo: Guia de Prática Clínica / Estudo prognóstico Idioma: Inglês Revista: Endocrinology and Metabolism Ano de publicação: 2021 Tipo de documento: Artigo