Preliminary experiments using subjective logic for the polyrepresentation of information needs

C. Lioma, Birger Larsen, P. Ingwersen
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引用次数: 10

Abstract

According to the principle of polyrepresentation, retrieval accuracy may improve through the combination of multiple and diverse information object representations about e.g. the context of the user, the information sought, or the retrieval system [9, 10]. Recently, the principle of polyrepresentation was mathematically expressed using subjective logic [12], where the potential suitability of each representation for improving retrieval performance was formalised through degrees of belief and uncertainty [15]. No experimental evidence or practical application has so far validated this model. We extend the work of Lioma et al. (2010) [15], by providing a practical application and analysis of the model. We show how to map the abstract notions of belief and uncertainty to real-life evidence drawn from a retrieval dataset. We also show how to estimate two different types of polyrepresentation assuming either (a) independence or (b) dependence between the information objects that are combined. We focus on the polyrepresentation of different types of context relating to user information needs (i.e. work task, user background knowledge, ideal answer) and show that the subjective logic model can predict their optimal combination prior and independently to the retrieval process.
初步实验使用主观逻辑的信息需求的多表示
根据多表示(polyrepresentation)原则,可以通过组合多个不同的信息对象表示来提高检索的准确性,例如用户的上下文、所查找的信息或检索系统[9,10]。最近,多表示原理使用主观逻辑[12]进行数学表达,其中每个表示对提高检索性能的潜在适用性通过信念度和不确定性[15]形式化。到目前为止,还没有实验证据或实际应用来验证这个模型。我们通过提供模型的实际应用和分析,扩展了Lioma等人(2010)[15]的工作。我们展示了如何将信念和不确定性的抽象概念映射到从检索数据集中提取的现实证据。我们还展示了如何在组合的信息对象之间假设(a)独立性或(b)依赖性来估计两种不同类型的多表示。我们重点研究了与用户信息需求(即工作任务、用户背景知识、理想答案)相关的不同类型上下文的多表示,并表明主观逻辑模型可以先于检索过程独立预测它们的最佳组合。
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