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A comparison of machine learning techniques for modeling human-robot interaction with children with autism

机译:与自闭症儿童建模人机互动的机器学习技术比较

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Several machine learning techniques are used to model the behavior of children with autism interacting with a humanoid robot, comparing a static model to a dynamic model using hand-coded features. Good accuracy (over 80%) is achieved in predicting child vocalizations; directions for future approaches to modeling the behavior of children with autism are suggested.
机译:几种机器学习技术用于模拟与人形机器人相互作用的自闭症儿童的行为,将静态模型与使用手工编码特征进行比较。在预测儿童发声中实现了良好的准确性(超过80%);建议了未来培养自闭症儿童行为的方法的指示。

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