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“Give me what I want” - enabling complex queries on rich multi-attribute data

机译:“给我我想要的东西”-对丰富的多属性数据进行复杂的查询

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Consumer and more generally, human preferences are highly complex, depending on a multitude of factors, most of which are not crisp, but uncertain/fuzzy in nature. Thus, user selection amongst a set of items is dependent on the complex comparison of items based on a large number of imprecise item-attributes such as price, size, colour, etc. This paper proposes the mechanisms to underpin the digital replication of such complex preference-based item selection with the view to enabling improved digital item search and recommendation systems. For example, a user may query “I would like a product of similar size but at a cheaper price.” The proposed method involves splitting query-attributes into two categories; those to remain similar (e.g., size) and those to be changed in a specific direction (e.g., price - to be lower). A combination of similarity and distance measures is then used to compare and rank recommendations. Initial results are presented indicating that the proposed method is effective at ranking items according to intuition and expected user preferences.
机译:消费者,更一般地说,人类的偏好非常复杂,取决于多种因素,其中大多数因素不明确,但本质上不确定/模糊。因此,用户在一组商品中的选择取决于基于大量不精确的商品属性(例如价格,尺寸,颜色等)的商品的复杂比较。本文提出了支持这种复杂商品的数字复制的机制基于偏好的项目选择,以实现改进的数字项目搜索和推荐系统。例如,用户可以查询“我想要一个尺寸相似但价格便宜的产品。”所提出的方法涉及将查询属性分为两类:保持相似的商品(例如尺寸)和要沿特定方向更改的商品(例如价格-更低)。然后使用相似度和距离度量的组合来对建议进行比较和排名。初步结果表明,该方法可有效地根据直觉和期望的用户偏好对项目进行排名。

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