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System and method for generating normalized relevance measure for analysis of search results

机译:用于生成归一化相关性度量以用于搜索结果分析的系统和方法

摘要

A system and related techniques permit a search service operator to access a variety of disparate relevance measures, and integrate those measures into idealized or unified data sets. A search service operator may employ self-learning networks to generate relevance rankings of Web site hits in response to user queries or searches, such as Boolean text or other searches. To improve the accuracy and quality of the rankings of results, the service provider may accept as inputs relevance measures created from query logs, from human-annotated search records, from independent commercial or other search sites, or from other sources and feed those measures to a normalization engine. That engine may normalize those relevance ratings to a common scale, such as quintiles, percentages or other scales or levels. The provider may then use that idealized or normalized combined measure to train the search algorithms or heuristics to arrive at more accurate results.
机译:系统和相关技术允许搜索服务运营商访问各种不同的相关性度量,并将这些度量集成到理想化或统一的数据集中。搜索服务运营商可以采用自学网络来响应用户查询或搜索(例如布尔文本或其他搜索)来生成网站命中的相关性等级。为了提高结果排名的准确性和质量,服务提供商可以接受从查询日志,人工注释的搜索记录,独立的商业或其他搜索网站或其他来源创建的相关性度量作为输入,并将这些度量提供给标准化引擎。该引擎可以将这些相关性等级归一化为通用标度,例如五分位数,百分比或其他标度或水平。提供者然后可以使用该理想化或标准化的组合度量来训练搜索算法或试探法以获得更准确的结果。

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