Fuzzy cognitive agents for personalized recommendation

C. Miao, Qiang Yang, H. Fang, A. Goh
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引用次数: 33

Abstract

There is an increasing need for various Web-service, e-commerce and e-business sites to provide personalized recommendations to on-line customers. This paper proposes a new type of personalized recommendation agents called fuzzy cognitive agents. Fuzzy cognitive agents are designed to give personalized suggestions based on the user's current personal preferences, other user's common preferences, and an expert's domain knowledge. Fuzzy cognitive agents are able to represent knowledge via extended fuzzy cognitive maps, learn users' preferences from most recent cases, and help customers make inferences and decisions through numeric computation instead of symbolic and logic deduction. A case study is included to illustrate how personalized recommendations are made by fuzzy cognitive agents in e-commerce sites. The case study demonstrates that the fuzzy cognitive agent is both flexible and effective in supporting e-commerce applications.
个性化推荐的模糊认知代理
越来越需要各种网络服务、电子商务和电子商务站点向在线客户提供个性化的建议。本文提出了一种新型的个性化推荐代理——模糊认知代理。模糊认知代理的设计是基于用户当前的个人偏好、其他用户的共同偏好和专家的领域知识来给出个性化的建议。模糊认知代理能够通过扩展的模糊认知图来表示知识,从最近的案例中学习用户的偏好,并通过数值计算而不是符号和逻辑推理来帮助客户进行推理和决策。本文通过一个案例研究来说明电子商务网站中模糊认知代理如何进行个性化推荐。实例研究表明,模糊认知代理在支持电子商务应用方面是灵活有效的。
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