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METHOD FOR TRAINING A RANKER MODULE USING A TRAINING SET HAVING NOISY LABELS

机译:使用带有噪声标签的训练集训练测距器模块的方法

摘要

There is disclosed a computer implemented method for training a search ranker, the search ranker being configured to ranking search results. The method comprises: retrieving, by the server, a training dataset including a plurality of training objects; for each training object, based on the corresponding associated object feature vector: determining a weight parameter, the weight parameter being indicative of a quality of the label; determining a relevance parameter, the relevance parameter being indicative of a moderated value of the labels relative to other labels within the training dataset; training the search ranker using the plurality of training objects of the training dataset, the determined relevance parameter for each training object of the plurality of training objects of the training dataset, and the determined weight parameter for each object of the plurality of training objects of the training dataset to rank a new document.
机译:公开了一种用于训练搜索排名者的计算机实现的方法,该搜索排名者被配置为对搜索结果进行排名。该方法包括:由服务器检索包括多个训练对象的训练数据集;对于每个训练对象,基于相应的相关对象特征向量:确定权重参数,该权重参数指示标签的质量;确定相关性参数,该相关性参数指示标签相对于训练数据集中的其他标签的调节值;使用训练数据集的多个训练对象,针对训练数据集的多个训练对象中的每个训练对象确定的相关性参数以及针对训练对象的多个训练对象中的每个对象确定的权重参数来训练搜索排名器训练数据集以对新文档进行排名。

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