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Gender Bias in Pretrained Swedish Embeddings

机译:普瑞特瑞典嵌入式的性别偏见

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This paper investigates the presence of gender bias in pretrained Swedish embeddings. We focus on a scenario where names are matched with occupations, and we demonstrate how a number of standard pretrained embeddings handle this task. Our experiments show some significant differences between the pretrained embeddings, with word-based methods showing the most bias and contextualized language models showing the least. We also demonstrate that a previously proposed debiasing method does not affect the performance of the various embeddings in this scenario.
机译:本文调查了掠夺瑞典嵌入的性别偏见的存在。我们专注于名称与职业匹配的场景,我们展示了多个标准佩带的嵌入式嵌入式操作该任务。我们的实验表现出佩带的嵌入物之间的一些显着差异,具有基于词的方法,显示最少的偏差和上下文化语言模型。我们还证明了先前提出的脱叠方法不会影响这种情况下各种嵌入的性能。

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