Adaptive Human-Robot Interaction System using Interactive EC

Y. Suga, Chihiro Endo, Daizo Kobayashi, Takeshi Matsumoto, S. Sugano, T. Ogata
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引用次数: 1

Abstract

We created a human-robot communication system that can adapt to user preferences that can easily change through communication. Even if any learning algorithms are used, evaluating the human-robot interaction is indispensable and difficult. To solve this problem, we installed a machine learning algorithm called interactive evolutionary computation (IEC) into a communication robot named WAMOEBA-3. IEC is a kind of evolutionary computation like a genetic algorithm. With IEC, the fitness function is performed by each user. We carried out experiments on the communication learning system using an advanced IEC system named HMHE. Before the experiments, we did not tell the subjects anything about the robot, so the interaction differed among the experimental subjects. We could observe mutual adaptation, because some subjects noticed the robot's functions and changed their interaction. From the results, we confirmed that, in spite of the changes of the preferences, the system can adapt to the interaction of multiple users
基于交互式电子商务的自适应人机交互系统
我们创造了一个人机交流系统,它可以适应用户的偏好,通过交流可以很容易地改变用户的偏好。即使使用任何学习算法,评估人机交互也是必不可少的,也是困难的。为了解决这个问题,我们在名为WAMOEBA-3的通信机器人中安装了一种名为交互进化计算(IEC)的机器学习算法。IEC是一种类似遗传算法的进化计算。对于IEC,适应度函数由每个用户执行。我们使用先进的IEC系统HMHE对交流学习系统进行了实验。在实验之前,我们没有告诉受试者关于机器人的任何事情,所以实验对象之间的互动是不同的。我们可以观察到相互适应,因为一些受试者注意到了机器人的功能,并改变了他们的互动。从实验结果中,我们证实了尽管用户的偏好发生了变化,系统仍然能够适应多用户的交互
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