Evaluating Risk-Sensitive Text Retrieval

R. Benham
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Abstract

Search engines with a loyal user-base face the difficult task of improving overall effectiveness while maintaining the quality of existing work-flows. Risk-sensitive evaluation tools are designed to address that task, but, they currently do not support inference over multiple baselines. Our research objectives are to: 1) Survey and revisit risk evaluation, taking into account frequentist and Bayesian inference approaches for comparing against multiple baselines; 2) Apply that new approach, evaluating a novel web search technique that leverages previously run queries to improve the effectiveness of a new user query; and 3) Explore how risk-sensitive component interactions affect end-to-end effectiveness in a search pipeline.
评估风险敏感文本检索
拥有忠实用户基础的搜索引擎面临着在保持现有工作流质量的同时提高整体效率的艰巨任务。对风险敏感的评估工具被设计用来处理这个任务,但是,它们目前不支持对多个基线的推断。我们的研究目标是:1)调查和重新审视风险评估,考虑频率论和贝叶斯推理方法,与多个基线进行比较;2)应用这种新方法,评估一种新的网络搜索技术,该技术利用以前运行的查询来提高新用户查询的有效性;3)探索风险敏感组件交互如何影响搜索管道中的端到端有效性。
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