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An Approach for Agitation Detection and Intervention in Sufferers of Autism Spectrum Disorder

机译:一种搅拌检测和干预在自闭症谱系患者中的干预

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Autism spectrum disorder (ASD) is a condition that is being diagnosed in a growing portion of the population. ASD represents a range of complex disorders with a number of symptoms including social difficulties and behavioral issues. Some individuals suffering from ASD are prone to incidents of agitation that can lead to escalation and meltdowns. Such incidents represent a risk to the individuals with ASD and others who share their environment. This paper introduces a novel approach to monitor triggers for these incidents with an aim to detect and predict an incident happening. Non-invasive sensors monitor factors within an environment that may indicate such an incident. Combined with an NFC and smart phone based mechanism to report incidents in a relatively friction free manner. These reports will be combined with sensor records to train a prediction system based on supervised machine learning. Future work will identify the best performing machine-learning technique and will evaluate the approach.
机译:自闭症谱系障碍(ASD)是诊断在人口生长部分中的病症。 Asd代表了一系列复杂疾病,症状包括社会困难和行为问题。患有ASD的一些人易于搅拌的事件,这可能导致升级和崩溃。此类事件代表了与分享其环境的其他人的个人的风险。本文介绍了一种新的方法来监测这些事件的触发器,目的是检测和预测发生的事件。非侵入式传感器监测可能表示此类事件的环境中的因素。结合基于NFC和智能手机的机制,以相对摩擦的方式报告事件。这些报告将与传感器记录相结合,以培训基于监督机器学习的预测系统。未来的工作将确定最好的执行机器学习技术,并评估方法。

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