Applications of Unsupervised Machine Learning in Autism Spectrum Disorder Research: a Review

被引:26
作者
Parlett-Pelleriti, Chelsea M. [1 ]
Stevens, Elizabeth [1 ]
Dixon, Dennis [2 ]
Linstead, Erik J. [1 ]
机构
[1] Chapman Univ, Fowler Sch Engn, Machine Learning & Affiliated Technol Lab, One Univ Dr, Orange, CA 92866 USA
[2] Ctr Autism & Related Disorders, Woodland Hills, CA USA
基金
美国国家科学基金会;
关键词
Autism spectrum disorder; ASD; Autism; Unsupervised machine learning; Clustering; Phenotypes; Subgroups; CLUSTER-ANALYSIS; SUBTYPES; CHILDREN; PHENOTYPES; SUBGROUPS;
D O I
10.1007/s40489-021-00299-y
中图分类号
B844 [发展心理学(人类心理学)];
学科分类号
040202 ;
摘要
Large amounts of autism spectrum disorder (ASD) data is created through hospitals, therapy centers, and mobile applications; however, much of this rich data does not have pre-existing classes or labels. Large amounts of data-both genetic and behavioral-that are collected as part of scientific studies or a part of treatment can provide a deeper, more nuanced insight into both diagnosis and treatment of ASD. This paper reviews 43 papers using unsupervised machine learning in ASD, including k-means clustering, hierarchical clustering, model-based clustering, and self-organizing maps. The aim of this review is to provide a survey of the current uses of unsupervised machine learning in ASD research and provide insight into the types of questions being answered with these methods.
引用
收藏
页码:406 / 421
页数:16
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