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Temperament-based information filtering: a human factors approach to information recommendation

机译:基于气质的信息过滤:人为因素的信息推荐方法

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The paper provides an intelligent multiagent approach to incorporate human temperaments into the filtering process of an information recommendation service. Our approach is to devise a new filtering mechanism, which addresses segmentation, learning, classification, and filtering techniques based on Keirsey's temperament theory (D. Keirsey and M. Bates, 1978), probability theory, the distributions of temperaments, and statistical reasoning. By presenting information units that are consistent with user interests as well as user temperament, the accuracy and precision of the recommendation service may be improved.
机译:本文提供了一种智能多代理方法,可以将人的气质纳入信息推荐服务的过滤过程中。我们的方法是设计一种新的过滤机制,该机制基于Keirsey的气质理论(D. Keirsey和M. Bates,1978),概率论,气质的分布以及统计推理来解决细分,学习,分类和过滤技术。通过呈现与用户兴趣以及用户气质一致的信息单元,可以提高推荐服务的准确性和准确性。

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