An Empirical Study for Vietnamese Constituency Parsing with Pre-training

October 19, 2020 ยท Declared Dead ยท ๐Ÿ› Conference on Research, Innovation and Vision for the Future in Computing & Communication Technologies

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Authors Tuan-Vi Tran, Xuan-Thien Pham, Duc-Vu Nguyen, Kiet Van Nguyen, Ngan Luu-Thuy Nguyen arXiv ID 2010.09623 Category cs.CL: Computation & Language Citations 4 Venue Conference on Research, Innovation and Vision for the Future in Computing & Communication Technologies Last Checked 5 months ago
Abstract
In this work, we use a span-based approach for Vietnamese constituency parsing. Our method follows the self-attention encoder architecture and a chart decoder using a CKY-style inference algorithm. We present analyses of the experiment results of the comparison of our empirical method using pre-training models XLM-Roberta and PhoBERT on both Vietnamese datasets VietTreebank and NIIVTB1. The results show that our model with XLM-Roberta archived the significantly F1-score better than other pre-training models, VietTreebank at 81.19% and NIIVTB1 at 85.70%.
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