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On a serendipity-oriented recommender system based on folksonomy

机译:基于民俗剖析的偶然性推荐系统

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This paper proposes a recommendation method that focuses on not only predictive accuracy but also serendipity. On many of the conventional recommendation methods, items are categorized according to their attributes (a genre, an authors, etc.) by the recommender in advance, and recommendation is made using the results of the categorization. In this study, impressions of users to items are adopted as a feature of the items, and each item is categorized according to the feature. Impressions used in such categorization are prepared using folksonomy, which classifies items using tags given by users. Next, the idea of "concepts" was introduced to avoid synonym and polysemy problems of tags. "Concepts" are impressions of users on items inferred from attached tags of folksonomy. The inferring method was also devised. A recommender system based on the method was developed in java language, and the effectiveness of the proposed method was verified through recommender experiments.
机译:本文提出了一种推荐方法,该方法不仅着眼于预测准确性,还着眼于偶然性。在许多常规推荐方法中,项目由推荐者预先根据它们的属性(体裁,作者等)进行分类,并且使用分类结果进行推荐。在这项研究中,采用用户对项目的印象作为项目的功能,并且根据功能对每个项目进行分类。此类分类中使用的印象是使用民俗分类法准备的,该分类法使用用户给定的标签对商品进行分类。接下来,引入“概念”的思想来避免标签的同义词和多义性问题。 “概念”是用户对从民俗分类的附加标签推断出的项目的印象。还设计了推断方法。用java语言开发了基于该方法的推荐系统,并通过推荐实验验证了该方法的有效性。

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