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Recognizing stereotypical motor movements in the laboratory and classroom

机译:识别实验室和教室中的定型运动

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Individuals with Autism Spectrum Disorders (ASD) frequently engage in stereotyped and repetitive motor movements. Automatically detecting these movements in real-time using comfortable, miniature wireless sensors could advance autistic research and enable new intervention tools for the classroom that help children and their caregivers monitor and cope with this potentially problematic class of behavior. We present activity recognition results for stereotypical hand flapping and body rocking using data collected from six children with ASD repeatedly observed in both laboratory and classroom settings. In the classroom, an overall recognition accuracy of 88.6% (TP: 0.85; FP: 0.08) was achieved using three sensors. Challenges encountered when applying machine learning to this domain, as well as implications for the development of real-time classroom interventions and research tools, are discussed.
机译:患有自闭症谱系障碍(ASD)的人经常从事定型和重复性的运动。使用舒适的微型无线传感器实时自动检测这些运动,可以促进自闭症研究,并为教室启用新的干预工具,以帮助儿童及其看护者监控和应对此类潜在问题的行为。我们使用从六个在实验室和教室环境中反复观察到的ASD儿童收集的数据,展示了针对典型手拍打和身体摇摆的活动识别结果。在教室中,使用三个传感器实现了88.6%的整体识别精度(TP:0.85; FP:0.08)。讨论了将机器学习应用于此领域时遇到的挑战,以及对实时课堂干预和研究工具的开发的影响。

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