D18-1021@ACL

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#1 Joint Representation Learning of Cross-lingual Words and Entities via Attentive Distant Supervision [PDF] [Copy] [Kimi1]

Authors: Yixin Cao ; Lei Hou ; Juanzi Li ; Zhiyuan Liu ; Chengjiang Li ; Xu Chen ; Tiansi Dong

Jointly representation learning of words and entities benefits many NLP tasks, but has not been well explored in cross-lingual settings. In this paper, we propose a novel method for joint representation learning of cross-lingual words and entities. It captures mutually complementary knowledge, and enables cross-lingual inferences among knowledge bases and texts. Our method does not require parallel corpus, and automatically generates comparable data via distant supervision using multi-lingual knowledge bases. We utilize two types of regularizers to align cross-lingual words and entities, and design knowledge attention and cross-lingual attention to further reduce noises. We conducted a series of experiments on three tasks: word translation, entity relatedness, and cross-lingual entity linking. The results, both qualitative and quantitative, demonstrate the significance of our method.