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S$^2$SQL: Injecting Syntax to Question-Schema Interaction Graph Encoder for Text-to-SQL Parsers (2203.06958v1)

Published 14 Mar 2022 in cs.CL

Abstract: The task of converting a natural language question into an executable SQL query, known as text-to-SQL, is an important branch of semantic parsing. The state-of-the-art graph-based encoder has been successfully used in this task but does not model the question syntax well. In this paper, we propose S$2$SQL, injecting Syntax to question-Schema graph encoder for Text-to-SQL parsers, which effectively leverages the syntactic dependency information of questions in text-to-SQL to improve the performance. We also employ the decoupling constraint to induce diverse relational edge embedding, which further improves the network's performance. Experiments on the Spider and robustness setting Spider-Syn demonstrate that the proposed approach outperforms all existing methods when pre-training models are used, resulting in a performance ranks first on the Spider leaderboard.

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Authors (7)
  1. Binyuan Hui (57 papers)
  2. Ruiying Geng (14 papers)
  3. Lihan Wang (24 papers)
  4. Bowen Qin (16 papers)
  5. Bowen Li (166 papers)
  6. Jian Sun (414 papers)
  7. Yongbin Li (128 papers)
Citations (50)