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Detection for Joint Attention Based on A Multi-sensor Visual System

机译:基于多传感器视觉系统的关节注意检测

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Autism Spectrum Disorder (ASD) is one of the most common mental disorders in childhood, with a wide range and high risk. At present, there is no cure for autism. The symptoms associated with autism can be improved through early diagnosis and intervention. Joint Attention is an important paradigm in the diagnosis and intervention of ASD, the JA performance of child refers to the skill of following the eyes and fingers of others. This paper proposes an algorism based on a multi-sensor visual system, which gains the gaze of the child and transforms the Joint Attention detection into a geometric problem and proposes a solution. We conducted 20 rounds of Joint Attention testing on 10 non-ASD adults through this system and algorism, and achieved an accuracy of 97.94%.
机译:自闭症谱系障碍(ASD)是儿童期最常见的精神障碍之一,范围广泛且风险很高。目前,尚无治愈自闭症的方法。与孤独症有关的症状可以通过早期诊断和干预得到改善。联合注意是诊断和干预ASD的重要范例,儿童的JA表现是指跟随他人的眼睛和手指的技巧。本文提出了一种基于多传感器视觉系统的算法,该算法获得了孩子的注视,并将联合注意检测转化为几何问题,并提出了解决方案。通过该系统和算法,我们对10名非ASD成年人进行了20轮联合注意测试,准确率达到了97.94%。

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