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Ranking search results using hierarchically organized machine learning based models

机译:使用分层组织的基于机器学习的模型对搜索结果进行排名

摘要

A multi-tenant system stores a hierarchy of machine-learned models, wherein each machine-learned model is configured to receive as input a set of search results and generate as output scores for ranking the set of search results. Each machine-learned model is associated with a set of dimensions. The system evaluates search query performance. Performance below a threshold causes a new model to be generated and added to the hierarchy of models. Upon execution of a new search query associated with the same set of dimensions as the newly created model, the new model is used to rank that search query's search results.
机译:多租户系统存储机器学习模型的层次结构,其中每个机器学习模型都配置为接收一组搜索结果作为输入,并生成用于对搜索结果集进行排名的得分。每个机器学习的模型都与一组尺寸相关联。系统评估搜索查询性能。低于阈值的性能会导致生成新模型并将其添加到模型层次结构中。在执行与新创建的模型具有相同维度集相关联的新搜索查询后,新模型将用于对该搜索查询的搜索结果进行排名。

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