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Crowdsourced validation of a machine-learning classification system for autism and ADHD

机译:机器学习分类系统对自闭症和多动症的众包验证

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摘要

Autism spectrum disorder (ASD) and attention deficit hyperactivity disorder (ADHD) together affect >10% of the children in the United States, but considerable behavioral overlaps between the two disorders can often complicate differential diagnosis. Currently, there is no screening test designed to differentiate between the two disorders, and with waiting times from initial suspicion to diagnosis upwards of a year, methods to quickly and accurately assess risk for these and other developmental disorders are desperately needed. In a previous study, we found that four machine-learning algorithms were able to accurately (area under the curve (AUC)>0.96) distinguish ASD from ADHD using only a small subset of items from the Social Responsiveness Scale (SRS). Here, we expand upon our prior work by including a novel crowdsourced data set of responses to our predefined top 15 SRS-derived questions from parents of children with ASD (n=248) or ADHD (n=174) to improve our model’s capability to generalize to new, ‘real-world’ data. By mixing these novel survey data with our initial archival sample (n=3417) and performing repeated cross-validation with subsampling, we created a classification algorithm that performs with AUC=0.89±0.01 using only 15 questions.
机译:在美国,自闭症谱系障碍(ASD)和注意力缺陷多动障碍(ADHD)共同影响了超过10%的儿童,但两种障碍之间的大量行为重叠通常会使鉴别诊断变得复杂。当前,没有旨在区分这两种疾病的筛查测试,并且从最初的怀疑到诊断的等待时间长达一年以上,迫切需要快速而准确地评估这些疾病和其他发育性疾病风险的方法。在先前的研究中,我们发现仅使用社交响应能力量表(SRS)中的一小部分项目,四种机器学习算法就能够准确地(曲线下面积(AUC)> 0.96)将ASD与ADHD进行区分。在这里,我们通过包含新颖的众包数据集来扩展我们之前的工作,这些数据集来自对ASD(n = 248)或ADHD(n = 174)儿童父母的预定义的前15个SRS衍生问题的回答,以改善模型的能力推广到新的“现实世界”数据。通过将这些新颖的调查数据与我们的初始档案样本(n = 3417)混合,并使用子采样执行重复的交叉验证,我们创建了一个分类算法,仅使用15个问题就可以执行AUC = 0.89±0.01。

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