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A PERSONALIZED FACET-WEIGHT BASED RANKING METHOD FOR SERVICE COMPONENT RETRIEVAL

机译:基于个性化Facet权重的服务组件检索排序方法

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摘要

With the recent advanced computing, networking technologies and embedded systems, the computing paradigm has switched from mainframe and desktop computing to ubiquitous computing, one of whose visions is to provide intelligent, personalized and comprehensive services to users. As a new paradigm, Active Services is proposed to generate such services by retrieving, adapting, and composing of existing service components to satisfy user requirements. As the popularity of this paradigm and hence the number of service components increases, how to efficiently retrieve components to maximally meet user requirements has become a fundamental and significant problem. However, traditional facet-based retrieval methods only simply list out all the results without any kind of ranking and do not lay any emphasis on the differences of importance on each facet value in user requirements, which makes it hard for user to quickly select suitable components from the resulting list. To solve the problems, this paper proposes a novel personalized facet-weight based ranking method for service component retrieval, which assigns a weight for each facet to distinguish the importance of the facets, and constructs a personalized model to automatically calculate facet-weights for users according to their historical retrieval records of the facet values and the weight setting. We optimize the parameters of the personalized model, evaluate the performance of the proposed retrieval method, and compare with the traditional facet-based matching methods. The experimental results show promising results in terms of retrieval accuracy and execution time.
机译:随着近来先进的计算,网络技术和嵌入式系统的发展,计算范式已从大型机和台式机转变为无处不在的计算,其愿景之一就是为用户提供智能,个性化和全面的服务。作为一种新的范例,Active Services被提议通过检索,调整和组合现有服务组件来满足用户需求来生成此类服务。随着这种范例的流行以及服务组件的数量增加,如何有效地检索组件以最大程度地满足用户需求已成为一个基本且重要的问题。但是,传统的基于方面的检索方法仅简单地列出所有结果,而没有进行任何排序,并且不强调用户需求中每个方面值的重要性差异,这使用户难以快速选择合适的组件从结果列表中。为了解决这些问题,本文提出了一种新颖的基于个性化方面权重的服务组件检索排序方法,该方法为每个方面分配权重以区分方面的重要性,并构建个性化模型以自动为用户计算方面权重根据他们的历史记录记录刻面值和权重。我们优化个性化模型的参数,评估所提出的检索方法的性能,并与传统的基于方面的匹配方法进行比较。实验结果表明,在检索准确性和执行时间方面有希望的结果。

著录项

  • 来源
    《Computing and informatics》 |2011年第3期|p.491-511|共21页
  • 作者单位

    Tsinghua National Laboratory for Information Science and Technology Beijing, 100084, China & Department of Computer Science and Technology Tsinghua University Beijing, 100084, China;

    Tsinghua National Laboratory for Information Science and Technology Beijing, 100084, China & Department of Computer Science and Technology Tsinghua University Beijing, 100084, China;

    Department of Computer Science St. Francis Xavier University Antigonish, NS, B2G 2W5, Canada;

    Tsinghua National Laboratory for Information Science and Technology Beijing, 100084, China&Department of Computer Science and Technology Tsinghua University Beijing, 100084, China;

    Tsinghua National Laboratory for Information Science and Technology Beijing, 100084, China&Department of Computer Science and Technology Tsinghua University Beijing, 100084, China;

    Tsinghua National Laboratory for Information Science and Technology Beijing, 100084, China&Department of Computer Science and Technology Tsinghua University Beijing, 100084, China;

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

    active services; component ranking; facet-weight; ubiquitous computing;

    机译:主动服务;组件排名;小面重量;普适计算;

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