A Deep Learning Approach for Missing Data Imputation of Rating Scales Assessing Attention-Deficit Hyperactivity Disorder

被引:18
|
作者
Cheng, Chung-Yuan [1 ,2 ]
Tseng, Wan-Ling [3 ]
Chang, Ching-Fen [1 ]
Chang, Chuan-Hsiung [1 ]
Gau, Susan Shur-Fen [2 ,4 ,5 ]
机构
[1] Natl Yang Ming Univ, Inst Biomed Informat, Taipei 112, Taiwan
[2] Natl Taiwan Univ Hosp & Coll Med, Dept Psychiat, Taipei, Taiwan
[3] Yale Univ, Sch Med, Ctr Child Study, New Haven, CT 06510 USA
[4] Natl Taiwan Univ, Coll Med, Grad Inst Brain & Mind Sci, Taipei, Taiwan
[5] Natl Taiwan Univ, Coll Med, Grad Inst Clin Med, Taipei, Taiwan
来源
FRONTIERS IN PSYCHIATRY | 2020年 / 11卷
关键词
ADHD; oppositional behavior; missing data imputation; deep learning; rating scale; continuous performance test; classifications; AUTISM SPECTRUM DISORDER; VERSION-IV SCALE; DEFICIT/HYPERACTIVITY DISORDER; PSYCHIATRIC COMORBIDITIES; PSYCHOMETRIC PROPERTIES; TAIWANESE CHILDREN; CHINESE VERSION; ADHD DIAGNOSIS; NAIVE ADULTS; ADOLESCENTS;
D O I
10.3389/fpsyt.2020.00673
中图分类号
R749 [精神病学];
学科分类号
100205 ;
摘要
A variety of tools and methods have been used to measure behavioral symptoms of attention-deficit/hyperactivity disorder (ADHD). Missing data is a major concern in ADHD behavioral studies. This study used a deep learning method to impute missing data in ADHD rating scales and evaluated the ability of the imputed dataset (i.e., the imputed data replacing the original missing values) to distinguish youths with ADHD from youths without ADHD. The data were collected from 1220 youths, 799 of whom had an ADHD diagnosis, and 421 were typically developing (TD) youths without ADHD, recruited in Northern Taiwan. Participants were assessed using the Conners' Continuous Performance Test, the Chinese versions of the Conners' rating scale-revised: short form for parent and teacher reports, and the Swanson, Nolan, and Pelham, version IV scale for parent and teacher reports. We used deep learning, with information from the original complete dataset (referred to as the reference dataset), to perform missing data imputation and generate an imputation order according to the imputed accuracy of each question. We evaluated the effectiveness of imputation using support vector machine to classify the ADHD and TD groups in the imputed dataset. The imputed dataset can classify ADHD vs. TD up to 89% accuracy, which did not differ from the classification accuracy (89%) using the reference dataset. Most of the behaviors related to oppositional behaviors rated by teachers and hyperactivity/impulsivity rated by both parents and teachers showed high discriminatory accuracy to distinguish ADHD from non-ADHD. Our findings support a deep learning solution for missing data imputation without introducing bias to the data.
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页数:13
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