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A Framework for the Evaluation of Adaptive IR Systems through Implicit Recommendation

机译:通过隐式推荐评估Adaptive IR系统的框架

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Personalised Information Retrieval (PIR) has gained considerable attention in recent literature. In PIR different stages of the retrieval process are adapted to the user, such as adapting the user's query or the results. Personalised recommender frameworks are endowed with intelligent mechanisms to search for products, goods and services that users are interested in. The objective of such tools is to evaluate and filter the huge amount of information available within a specific scope to assist users in their information access processes. This paper presents a web-based adaptive framework for evaluating personalised information retrieval systems. The framework uses implicit recommendation to guide users in deciding which evaluation techniques, metrics and criteria to use. A task-based experiment was conducted to test the functionality and performance of the framework. A Review of evaluation techniques for personalised IR systems was conducted and the results of the analysed survey are presented.
机译:个性化信息检索(PIR)在最近的文献中取得了相当大的关注。在PIR中,检索过程的不同阶段适用于用户,例如适应用户的查询或结果。个性化的推荐框架是赋予用户感兴趣的产品,商品和服务的智能机制。此类工具的目的是评估和过滤特定范围内可用的大量信息,以帮助用户在其信息访问进程中提供帮助。本文介绍了基于Web的自适应框架,用于评估个性化信息检索系统。该框架使用隐式推荐来指导用户决定使用哪种评估技术,指标和标准。进行了基于任务的实验,以测试框架的功能和性能。进行了对个性化IR系统评估技术的审查,并提出了分析调查的结果。

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