most citedSelective Annotation Makes Language Models Better Few-Shot Learners

64 citations · 73 across the 7 of their papers we have counts for

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cs.CL20224 cited

XRICL: Cross-lingual Retrieval-Augmented In-Context Learning for Cross-lingual Text-to-SQL Semantic Parsing

Peng Shi, Rui Zhang, He Bai +1

In-context learning using large language models has recently shown surprising results for semantic parsing tasks such as Text-to-SQL translation. Prompting GPT-3 or Codex using sev…

cs.CL20221 cited

ReasTAP: Injecting Table Reasoning Skills During Pre-training via Synthetic Reasoning Examples

Yilun Zhao, Linyong Nan, Zhenting Qi +2

Reasoning over tabular data requires both table structure understanding and a broad set of table reasoning skills. Current models with table-specific architectures and pre-training…

cs.CL202264 cited

Selective Annotation Makes Language Models Better Few-Shot Learners

Hongjin Su, Jungo Kasai, Chen Henry Wu +8

Many recent approaches to natural language tasks are built on the remarkable abilities of large language models. Large language models can perform in-context learning, where they l…

cs.CL20211 cited

Prefix-to-SQL: Text-to-SQL Generation from Incomplete User Questions

Naihao Deng, Shuaichen Chang, Peng Shi +2

Existing text-to-SQL research only considers complete questions as the input, but lay-users might strive to formulate a complete question. To build a smarter natural language inter…

cs.CL2021

An Exploratory Study on Long Dialogue Summarization: What Works and What's Next

Yusen Zhang, Ansong Ni, Tao Yu +6

Dialogue summarization helps readers capture salient information from long conversations in meetings, interviews, and TV series. However, real-world dialogues pose a great challeng…

cs.CL20212 cited

Cross-Lingual Training with Dense Retrieval for Document Retrieval

Peng Shi, Rui Zhang, He Bai +1

Dense retrieval has shown great success in passage ranking in English. However, its effectiveness in document retrieval for non-English languages remains unexplored due to the limi…