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Improving Autism Spectrum Disorder Prediction by Fusion of Multiple Measures of Resting-State Functional MRI Data
Liang, Lingyan1,2,3; Dong, Gang3; Li, Changsheng4; Wen, Dongchao3; Zhao, Yaqian3; Li, Jing1,2
第一作者Liang, Lingyan
摘要

data-language="eng" data-ev-field="abstract">Autism spectrum disorder (ASD) is a lifelong neurodevelopmental condition characterized by social communication, language and behavior impairments. Leveraging deep learning to automatically predict ASD has attracted more and more attention in the medical and machine learning communities. However, how to select effective measure signals for deep learning prediction is still a challenging problem. In this paper, we studied two kinds of measure signals, i.e., regional homogeneity (ReHo) and Craddock 200 (CC200), which both represents homogeneous functional activity, in the framework of deep learning, and designed a new mechanism to effectively joint them for deep learning based ASD prediction. Extensive experiments on the ABIDE dataset provide empirical evidence in support of effectiveness of our method. In particular, we obtained 79% in terms of accuracy by effectively fusing these two kinds of signals, much better than any single-measure model (ReHo SM-model: ∼69% and CC200 SM-model: ∼70%). These results suggest that leveraging multi-measure signals together are effective for ASD prediction.

2022
语种英语
发表期刊CompendexConference article (CA) Improving Autism Spectrum Disorder Prediction by Fusion of Multiple Measures of Resting-State Functional MRI Data Proceedings of the Annual International Conference of the IEEE Engineering in Medicine and Biology Society, EMBS
期号7页码:1851-1854
期刊论文类型综述
收录类别EI
文献类型期刊论文
条目标识符https://ir.psych.ac.cn/handle/311026/43474
专题中国科学院行为科学重点实验室
作者单位1.Institute of Psychology, Chinese Academy of Sciences, CAS Key Laboratory of Behavioral Science, Beijing, China
2.University of Chinese, Academy of Sciences, Department of Psychology, Beijing, China
3.Inspur Group Company Limited, State Key Laboratory of High-End Server and Storage Technology, Beijing, China
4.Beijing Institute of Technology, China
第一作者单位中国科学院心理研究所
推荐引用方式
GB/T 7714
Liang, Lingyan,Dong, Gang,Li, Changsheng,et al. Improving Autism Spectrum Disorder Prediction by Fusion of Multiple Measures of Resting-State Functional MRI Data[J]. CompendexConference article (CA) Improving Autism Spectrum Disorder Prediction by Fusion of Multiple Measures of Resting-State Functional MRI Data Proceedings of the Annual International Conference of the IEEE Engineering in Medicine and Biology Society, EMBS,2022(7):1851-1854.
APA Liang, Lingyan,Dong, Gang,Li, Changsheng,Wen, Dongchao,Zhao, Yaqian,&Li, Jing.(2022).Improving Autism Spectrum Disorder Prediction by Fusion of Multiple Measures of Resting-State Functional MRI Data.CompendexConference article (CA) Improving Autism Spectrum Disorder Prediction by Fusion of Multiple Measures of Resting-State Functional MRI Data Proceedings of the Annual International Conference of the IEEE Engineering in Medicine and Biology Society, EMBS(7),1851-1854.
MLA Liang, Lingyan,et al."Improving Autism Spectrum Disorder Prediction by Fusion of Multiple Measures of Resting-State Functional MRI Data".CompendexConference article (CA) Improving Autism Spectrum Disorder Prediction by Fusion of Multiple Measures of Resting-State Functional MRI Data Proceedings of the Annual International Conference of the IEEE Engineering in Medicine and Biology Society, EMBS .7(2022):1851-1854.
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