Reasoning on domain knowledge level in human-computer interaction

Chaochang Chiu, Anthony F. Norcio, Chi-I Hsu
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引用次数: 0

Abstract

This paper proposes an innovative approach for dynamically analyzing a user's dialog behavior and inferring a user's domain knowledge level simultaneously that combines neural networks, fuzzy cognitive maps, and fuzzy production rules. Further, this approach supports more cooperative human-computer interaction through dialog adaptation. Furthermore, when the user's knowledge level and problem-solving capability are inferred more accurately, there is more assurance that the system's interaction strategy can match more closely to the user's style. This research implements a neural network for classifying a user's performance pattern using UNIX file security commands. Input and output information that relate to a fuzzy cognitive map and fuzzy production rules are explained.

基于领域知识层次的人机交互推理
本文提出了一种结合神经网络、模糊认知地图和模糊产生规则的动态分析用户对话行为和同时推断用户领域知识水平的创新方法。此外,该方法通过对话适应支持更协作的人机交互。此外,当用户的知识水平和解决问题的能力被推断得越准确,就越能保证系统的交互策略能更紧密地与用户的风格匹配。本研究利用UNIX文件安全命令实现了一个神经网络,用于对用户的性能模式进行分类。解释了与模糊认知图和模糊产生规则相关的输入和输出信息。
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