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Revisiting paraphrase question generator using pairwise discriminator

机译:使用成对鉴别器重新审视释义问题生成器

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In this paper, we propose a method for obtaining sentence-level embeddings. While the problem of obtaining word-level embeddings is very well studied, we propose a novel method for obtaining sentence-level embeddings. This is obtained by a simple method in the context of solving the paraphrase generation task. If we use a sequential encoder-decoder model for generating paraphrase, we would like the generated paraphrase to be semantically close to the original sentence. One way to ensure this is by adding constraints for true paraphrase embeddings to be close and unrelated paraphrase candidate sentence embeddings to be far. This is ensured by using a sequential pair-wise discriminator that shares weights with the encoder. This discriminator is trained with a suitable loss function. Our loss function penalizes paraphrase sentence embedding distances from being too large. This loss is used in combination with a sequential encoder-decoder network. We also validate our method by evaluating the obtained embeddings for a sentiment analysis task. The proposed method results in semantic embeddings and provide competitive results on the paraphrase generation and sentiment analysis task on standard dataset. These results are also shown to be statistically significant. (C) 2020 Elsevier B.V. All rights reserved.
机译:在本文中,我们提出了一种获取句子级嵌入的方法。虽然研究了单词级嵌入式的问题非常好,但我们提出了一种用于获得句子级嵌入的新方法。这是通过在解决解释生成任务的上下文中的简单方法获得的。如果我们使用用于生成释义的顺序编码器 - 解码器模型,我们希望生成的释义以语义上靠近原始句子。一种方法来确保这是通过为真正的释义嵌入的约束来关闭,而无关的释义候选句嵌入到远远。通过使用与编码器共享权重的顺序对对鉴别器来确保这一点。该鉴别器具有合适的损耗功能培训。我们的损失职能惩罚嵌入距离太大的解释句。该损耗与顺序编码器 - 解码器网络结合使用。我们还通过评估所获得的嵌入式来验证我们的情绪分析任务。所提出的方法导致语义嵌入品,并在标准数据集中的释义生成和情感分析任务中提供竞争结果。这些结果也显示出统计学意义。 (c)2020 Elsevier B.v.保留所有权利。

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