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Context-aware Neural Machine Translation with Mini-batch Embedding

机译:背景信息,具有迷你批量嵌入的神经电脑翻译

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It is crucial to provide an inter-sentence context in Neural Machine Translation (NMT) models for higher-quality translation. With the aim of using a simple approach to incorporate inter-sentence information, we propose mini-batch embedding (MBE) as a way to represent the features of sentences in a mini-batch. We construct a mini-batch by choosing sentences from the same document, and thus the MBE is expected to have contextual information across sentences. Here, we incorporate MBE in an NMT model, and our experiments show that the proposed method consistently outperforms the translation capabilities of strong baselines and improves writing style or terminology to fit the document's context.
机译:在神经机翻译(NMT)模型中提供句子际语境至关重要,以获得更高质量的翻译。 随着使用简单方法来合并句子际信息,我们将迷你批量嵌入(MBE)作为代表迷你批处理中句子的特征的方式。 通过选择来自同一文档的句子来构建迷你批处理,因此预计MBE将在句子中具有上下文信息。 在这里,我们在NMT模型中纳入了MBE,我们的实验表明,该方法始终如一地优于强型基线的翻译能力,并改善了写作风格或术语以适应文档的背景。

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