Application of Medical Statistical and Machine Learning Methods in the Age Estimation of Living Individuals.

Q3 Medicine
Dan-Yang Li, Yu Pan, Hui-Ming Zhou, Lei Wan, Cheng-Tao Li, Mao-Wen Wang, Ya-Hui Wang
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引用次数: 0

Abstract

In the study of age estimation in living individuals, a lot of data needs to be analyzed by mathematical statistics, and reasonable medical statistical methods play an important role in data design and analysis. The selection of accurate and appropriate statistical methods is one of the key factors affecting the quality of research results. This paper reviews the principles and applicable principles of the commonly used medical statistical methods such as descriptive statistics, difference analysis, consistency test and multivariate statistical analysis, as well as machine learning methods such as shallow learning and deep learning in the age estimation research of living individuals, and summarizes the relevance and application prospects between medical statistical methods and machine learning methods. This paper aims to provide technical guidance for the age estimation research of living individuals to obtain more scientific and accurate results.

医学统计和机器学习方法在活人年龄估计中的应用。
在活体年龄估计研究中,大量数据需要通过数理统计进行分析,合理的医学统计方法在数据设计和分析中发挥着重要作用。选择准确、恰当的统计方法是影响研究成果质量的关键因素之一。本文综述了描述统计、差异分析、一致性检验、多元统计分析等常用医学统计方法以及浅层学习、深度学习等机器学习方法在活体年龄估计研究中的原理和适用原则,总结了医学统计方法与机器学习方法的相关性和应用前景。本文旨在为活体年龄估计研究提供技术指导,以获得更科学、更准确的结果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
法医学杂志
法医学杂志 Medicine-Pathology and Forensic Medicine
CiteScore
1.50
自引率
0.00%
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0
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