在高分化情景下为群体推荐生成自然语言解释

Shabnam Najafian
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引用次数: 2

摘要

在某些情况下,比如音乐或旅游,人们经常集体消费。然而,由于不同的成员可能有高度不同的品味,达成共识是困难的。为了让群体中的其他人满意,个人可能需要偶尔面对他们不喜欢的东西。在这种情况下,解释系统是如何提出推荐项目的,可能会让用户更容易接受他们可能不喜欢的项目,从而为团队带来好处。本文介绍了我们在为群体消费推荐商品(包括音乐和旅游)的改进算法和生成自然语言解释的方法方面的进展。我们未来的方向包括通过建模不同的因素来扩展当前的工作,当我们为群体产生解释时,我们需要考虑这些因素,例如群体的规模、群体成员的个性、人口统计以及他们之间的关系。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Generating Natural Language Explanations for Group Recommendations in High Divergence Scenarios
In some scenarios, like music or tourism, people often consume items in groups. However, reaching a consensus is difficult as different members of the group may have highly diverging tastes. To keep the rest of the group satisfied, an individual might need to be confronted occasionally with items they do not like. In this context, presenting an explanation of how the system came up with the recommended item(s), may make it easier for users to accept items they might not like for the benefit of the group. This paper presents our progress on proposing improved algorithms for recommending items (for both music and tourism) for a group to consume and an approach for generating natural language explanations. Our future directions include extending the current work by modeling different factors that we need to consider when we generate explanations for groups e.g. size of the group, group members' personality, demographics, and their relationship.
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