一种面向文物应用的多媒体语义推荐系统

Massimiliano Albanese, A. d’Acierno, V. Moscato, Fabio Persia, A. Picariello
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引用次数: 55

摘要

信息过载是信息获取领域面临的重要挑战之一。为了解决这一问题,本文提出了一种语义多媒体推荐系统的策略,该策略利用多媒体对象的语义内容和底层特征、单个用户的过去行为和用户社区的整体行为来计算定制推荐。我们已经实现了一个推荐原型浏览乌菲齐画廊的数字图片集。然后,我们根据用户满意度来调查所提出方法的有效性。获得的初步实验结果表明,我们的方法是很有前途的,并鼓励在这一方向的进一步研究。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A Multimedia Semantic Recommender System for Cultural Heritage Applications
One of the most important challenge in the information access field is information overload. To cope with this problem, in this paper, we present a strategy for a semantic multimedia recommender system that computes customized recommendations using semantic contents and low-level features of multimedia objects, past behavior of individual users and behavior of the users' community as a whole. We have implemented a recommender prototype for browsing the Uffizi Gallery digital picture collection. Then, we investigated the effectiveness of the proposed approach, based on the users satisfaction. The obtained preliminary experimental results show that our approach is quite promising and encourages further research in this direction.
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