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Use of Granularity and Coverage in a User Profile Model to Personalise Visual Content Retrieval

机译:在用户配置文件模型中使用粒度和覆盖范围以个性化视觉内容检索

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The enormous volume of visual content available from cameras and from recordings stored in data centres and the phenomenal number of users presents a major challenge to the research community. This major challenge is the use of adaptive techniques for personalised retrieval and filtering mechanisms in order to find relevant visual content appropriate to individual needs but without overloading users by retrieving uninteresting content. This paper presents a user modelling framework, which integrates a statistic model based upon Latent Semantic Indexing (LSI) and a First-order Logic (FOL) type knowledge-based technique, in order to acquire static and dynamic user preferences. Consequently, the framework is able to detect shifts in user interests. The framework is also able to construct a user profile at appropriate levels of granularity and coverage by taking advantage of concept properties, relations and the distance between nodes in users' model of a domain with respect to a common or global domain model. In addition, terminological problems such as ambiguities are solved by exploiting an external lexical reference system, WordNet.
机译:来自摄像机和数据中心中存储的录音的巨大视觉内容和用户现象数对研究界提出了重大挑战。这一主要挑战是使用自适应技术进行个性化检索和过滤机制,以便找到适合各个需要的相关视觉内容,但是在不重新载荷的情况下通过检索不接口的内容来重载用户。本文介绍了一个用户建模框架,其基于潜在语义索引(LSI)和基于知识的知识的技术集成了统计模型,以获取静态和动态用户偏好。因此,该框架能够检测用户兴趣的偏移。该框架还能够在相对于公共或全局域模型的用户模型中的用户模型中的节点之间的概念属性,关系和节点之间的概念属性,关系和距离来构建用户简档。此外,通过利用外部词汇参考系统,Wordnet来解决诸如歧义的术语问题。

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