Towards Neural Machine Translation with Partially Aligned Corpora

November 03, 2017 ยท Declared Dead ยท ๐Ÿ› International Joint Conference on Natural Language Processing

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Authors Yining Wang, Yang Zhao, Jiajun Zhang, Chengqing Zong, Zhengshan Xue arXiv ID 1711.01006 Category cs.CL: Computation & Language Citations 10 Venue International Joint Conference on Natural Language Processing Last Checked 5 months ago
Abstract
While neural machine translation (NMT) has become the new paradigm, the parameter optimization requires large-scale parallel data which is scarce in many domains and language pairs. In this paper, we address a new translation scenario in which there only exists monolingual corpora and phrase pairs. We propose a new method towards translation with partially aligned sentence pairs which are derived from the phrase pairs and monolingual corpora. To make full use of the partially aligned corpora, we adapt the conventional NMT training method in two aspects. On one hand, different generation strategies are designed for aligned and unaligned target words. On the other hand, a different objective function is designed to model the partially aligned parts. The experiments demonstrate that our method can achieve a relatively good result in such a translation scenario, and tiny bitexts can boost translation quality to a large extent.
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