首页> 外文期刊>International Journal of Information Technology & Decision Making >EXPLOITING IMAGE CONTENT IN LOCATION-BASED SHOPPING RECOMMENDER SYSTEMS FOR MOBILE USERS
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EXPLOITING IMAGE CONTENT IN LOCATION-BASED SHOPPING RECOMMENDER SYSTEMS FOR MOBILE USERS

机译:在基于位置的移动用户购物推荐系统中探索图像内容

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摘要

This paper demonstrates how image content can be used to realize a location-based shopping recommender system for intuitively supporting mobile users in decision making. Generic Fourier Descriptors (GFD) image content of an item was extracted to exploit knowledge contained in item and user profile databases for learning to rank recommendations. Analytic Hierarchy Process (AHP) was used to automatically select a query item from a user profile. Single Criterion Decision Ranking (SCDR) and Multiple-Criteria Decision-Ranking (MCDR) techniques were compared to study the effect of multidimensional ratings of items on recommendations effectiveness. The SCDR and MCDR techniques are, respectively, based on Image Content Similarity Score (ICSS) and Relative Ratio (RR) aggregating function. Experimental results of a real user study showed that an MCDR system increases user satisfaction and improves recommendations effectiveness better than an SCDR system.
机译:本文演示了如何使用图像内容来实现基于位置的购物推荐系统,以直观地支持移动用户的决策。提取项目的通用傅立叶描述符(GFD)图像内容,以利用项目和用户资料数据库中包含的知识来学习对推荐进行排名。层次分析过程(AHP)用于自动从用户个人资料中选择查询项目。比较了单标准决策排名(SCDR)和多标准决策排名(MCDR)技术,以研究项目的多维评级对建议有效性的影响。 SCDR和MCDR技术分别基于图像内容相似性评分(ICSS)和相对比率(RR)聚合函数。真实用户研究的实验结果表明,MCDR系统比SCDR系统更好地提高了用户满意度并提高了推荐效果。

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