英语-阿萨姆语对的多模态神经机器翻译

Sahinur Rahman Laskar, Bishwaraj Paul, Siddharth Paudwal, Pranjit Gautam, Nirmita Biswas, Partha Pakray
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引用次数: 4

摘要

神经机器翻译是自然语言间自动翻译的一种先进方法。多模态概念利用文本和图像特征来改进低资源神经机器翻译。英语-阿萨姆语缺乏标准的多模态语料库。我们提出了一个多模态语料库,适用于英语-阿萨姆语对的多模态翻译任务。英语-阿萨姆语多模态语料库用于实现英语-阿萨姆语和英语-阿萨姆语翻译的多模态神经机器翻译模型。纯文本和多模态神经机器翻译的自动评价指标比较结果表明,多模态神经机器翻译优于纯文本神经机器翻译。
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Multimodal Neural Machine Translation for English–Assamese Pair
Neural machine translation is a state-of-the-art approach for the automatic translation between natural languages. The multimodal concept utilizes textual and image features for improvement in low-resource neural machine translation. There is a lack of a standard multimodal corpus for the English–Assamese low-resource pair. We present a multimodal corpus which is suitable for multimodal translation task of English–Assamese pair. The English–Assamese multimodal corpus is used to implement multimodal neural machine translation models for English-to-Assamese translation and vice-versa. The comparative results of automatic evaluation metrics between text-only and multimodal neural machine translation show multimodal neural machine translation outperforms text-only neural machine translation.
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