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arXiv (Cornell University)
Realistic Data Augmentation Framework for Enhancing Tabular Reasoning
October 2022 • Dibyakanti Kumar, Vivek Gupta, Soumya Sharma, Shuo Zhang
Existing approaches to constructing training data for Natural Language Inference (NLI) tasks, such as for semi-structured table reasoning, are either via crowdsourcing or fully automatic methods. However, the former is expensive and time-consuming and thus limits scale, and the latter often produces naive examples that may lack complex reasoning. This paper develops a realistic semi-automated framework for data augmentation for tabular inference. Instead of manually generating a hypothesis for each table, our meth…
Computer Science
Crowdsourcing
Artificial Intelligence
Machine Learning
Data Mining
Epistemology
Philosophy