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Smart Word Suggestions for Writing Assistance

Authors :
Wang, Chenshuo
Mao, Shaoguang
Ge, Tao
Wu, Wenshan
Wang, Xun
Xia, Yan
Tien, Jonathan
Zhao, Dongyan
Publication Year :
2023

Abstract

Enhancing word usage is a desired feature for writing assistance. To further advance research in this area, this paper introduces "Smart Word Suggestions" (SWS) task and benchmark. Unlike other works, SWS emphasizes end-to-end evaluation and presents a more realistic writing assistance scenario. This task involves identifying words or phrases that require improvement and providing substitution suggestions. The benchmark includes human-labeled data for testing, a large distantly supervised dataset for training, and the framework for evaluation. The test data includes 1,000 sentences written by English learners, accompanied by over 16,000 substitution suggestions annotated by 10 native speakers. The training dataset comprises over 3.7 million sentences and 12.7 million suggestions generated through rules. Our experiments with seven baselines demonstrate that SWS is a challenging task. Based on experimental analysis, we suggest potential directions for future research on SWS. The dataset and related codes is available at https://github.com/microsoft/SmartWordSuggestions.<br />Comment: Accepted by Findings of ACL23

Details

Database :
arXiv
Publication Type :
Report
Accession number :
edsarx.2305.09975
Document Type :
Working Paper