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Since the context hidden vector itself does not take the label into account and it is projected to the label through a linear classifier, the model cannot sufficiently leverage valuable information from the source sentence as verified in our experiments, which eventually hinders its overall performance. To alleviate this issue, this work proposes an energy-based model for WLAC, which enables the context hidden vector to capture crucial information from the source sentence. Unfortunately, training and inference suffer from efficiency and effectiveness challenges, therefore we employ three simple yet effective strategies to put our model into practice. Experiments on four standard benchmarks demonstrate that our reranking-based approach achieves substantial improvements (about 6.07%) over the previous state-of-the-art model. Further analyses show that each strategy of our approach contributes to the final performance.1<\/jats:p>","DOI":"10.1162\/tacl_a_00637","type":"journal-article","created":{"date-parts":[[2024,2,15]],"date-time":"2024-02-15T14:17:16Z","timestamp":1708006636000},"page":"137-156","update-policy":"https:\/\/doi.org\/10.1162\/mitpressjournals.corrections.policy","source":"Crossref","is-referenced-by-count":1,"title":["An Energy-based Model for Word-level AutoCompletion in Computer-aided Translation"],"prefix":"10.1162","volume":"12","author":[{"given":"Cheng","family":"Yang","sequence":"first","affiliation":[{"name":"Tsinghua Shenzhen International Graduate School, Tsinghua University, China. yangc21@mails.tsinghua.edu.cn"}],"role":[{"role":"author","vocabulary":"crossref"}]},{"given":"Guoping","family":"Huang","sequence":"additional","affiliation":[{"name":"Tencent AI Lab, China. 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