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一种机器学习方法评估 ADHD 儿童与非 ADHD 儿童的 KINDL 生活质量问卷的差异项目功能。

A Machine Learning Approach to Assess Differential Item Functioning of the KINDL Quality of Life Questionnaire Across Children with and Without ADHD.

机构信息

Department of Biostatistics, School of Medicine, Shiraz University of Medical Sciences, Shiraz, Iran.

Research Center for Psychiatry and Behavioral Sciences, Department of Psychiatry, School of Medicine, Shiraz University of Medical Sciences, Shiraz, Iran.

出版信息

Child Psychiatry Hum Dev. 2022 Oct;53(5):980-991. doi: 10.1007/s10578-021-01179-6. Epub 2021 May 7.

Abstract

This study aimed to investigate differential item functioning (DIF) of the child and parent reports of the KINDL measure across children with and without Attention-deficit/hyperactivity disorder (ADHD). The sample included 122 children with ADHD and 1086 healthy peers, alongside 127 and 1061 of their parents, respectively. The generalized partial credit model with lasso penalization, as a machine learning method, was used to assess DIF of the KINDL across the two groups. The findings showed that three out of 24 items of the child reports and seven out of 24 items of the parent reports of the KINDL exhibited DIF between children with and without ADHD. Accordingly, Iranian children with and without ADHD along with their parents perceive almost all items in the KINDL similarly. Hence, the observed difference in quality of life scores between children with and without ADHD is a real difference and not a reflection of measurement bias.

摘要

本研究旨在调查儿童和家长报告的 KINDL 量表在注意力缺陷多动障碍(ADHD)儿童和无 ADHD 儿童中的差异项目功能(DIF)。样本包括 122 名 ADHD 儿童和 1086 名健康同龄人,以及他们的 127 名和 1061 名家长。广义部分信用模型与套索惩罚作为机器学习方法,用于评估 KINDL 在两组之间的 DIF。研究结果表明,儿童报告的 24 项中的 3 项和家长报告的 24 项中的 7 项在 ADHD 儿童和无 ADHD 儿童之间存在 DIF。因此,伊朗有和没有 ADHD 的儿童及其父母对 KINDL 的几乎所有项目都有相似的感知。因此,ADHD 儿童和无 ADHD 儿童之间生活质量评分的差异是真实的差异,而不是测量偏差的反映。

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