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Impact of the Context Relevancy on Ratings Prediction in a Movie-Recommender System

机译:电影推荐系统中上下文相关性对收视率预测的影响

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摘要

Recommender systems are a popular and a highly researched way of helping users get to their desired content in the huge amount of available data, and services online. Understanding the situation in which users consume the items was shown to improve the recommendation process. For that reason, context-aware recommender system (CARS) employs contextual information in order to enhance the user's model and to improve the recommendations. An issue that is still open is how to decide which pieces of contextual information to acquire and how to incorporate them into CARS, since using irrelevant piece of contextual information could have a negative impact on the recommendations. We propose a methodology for detecting which pieces of contextual information contribute to explaining the variance in the ratings, based on statistical testing. We also inspect the impact of the detected relevant pieces of contextual information on the ratings prediction based on the matrix-factorization algorithm. The experiment was conducted on the MovieAT database. The results showed a significant difference in the ratings prediction using the relevant and the irrelevant pieces of contextual information. We also confirmed the positive impact of the relevant, and negative impact of the irrelevant pieces of contextual information with respect to the uncontextualized model.
机译:推荐系统是一种流行的且经过深入研究的方法,可以帮助用户通过大量可用数据和在线服务获得所需的内容。可以了解用户消耗物品的情况,从而改善了推荐过程。因此,上下文感知推荐系统(CARS)使用上下文信息以增强用户模型并改善推荐。一个尚待解决的问题是如何决定要获取哪些上下文信息以及如何将其合并到CARS中,因为使用无关的上下文信息可能会对建议产生负面影响。我们提出了一种基于统计测试来检测哪些上下文信息有助于解释评分差异的方法。我们还将检查检测到的相关上下文信息对基于矩阵分解算法的收视率预测的影响。实验是在MovieAT数据库上进行的。结果显示,在使用相关和不相关的上下文信息进行收视率预测时,存在显着差异。我们还确认了与上下文无关的模型相关的上下文信息的相关和负面影响。

著录项

  • 来源
    《Automatika》 |2013年第2期|252-262|共11页
  • 作者单位

    Digital Signal, Image and Video Processing Laboratory, Faculty of Electrical Engineering,University of Ljubljana,Trzaska cesta 25, SI-1000 Ljubljana, Slovenia;

    Digital Signal, Image and Video Processing Laboratory, Faculty of Electrical Engineering,University of Ljubljana,Trzaska cesta 25, SI-1000 Ljubljana, Slovenia;

    Digital Signal, Image and Video Processing Laboratory, Faculty of Electrical Engineering,University of Ljubljana,Trzaska cesta 25, SI-1000 Ljubljana, Slovenia;

    Digital Signal, Image and Video Processing Laboratory, Faculty of Electrical Engineering,University of Ljubljana,Trzaska cesta 25, SI-1000 Ljubljana, Slovenia;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Personalization; Recommender systems; Context-awareness;

    机译:个性化;推荐系统;情境意识;

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