Reasoning Circuits: Few-shot Multihop Question Generation with Structured Rationales

November 15, 2022 ยท Declared Dead ยท ๐Ÿ› NLRSE

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Authors Saurabh Kulshreshtha, Anna Rumshisky arXiv ID 2211.08466 Category cs.CL: Computation & Language Citations 4 Venue NLRSE Last Checked 5 months ago
Abstract
Multi-hop Question Generation is the task of generating questions which require the reader to reason over and combine information spread across multiple passages using several reasoning steps. Chain-of-thought rationale generation has been shown to improve performance on multi-step reasoning tasks and make model predictions more interpretable. However, few-shot performance gains from including rationales have been largely observed only in +100B language models, and otherwise require large scale manual rationale annotation. In this work, we introduce a new framework for applying chain-of-thought inspired structured rationale generation to multi-hop question generation under a very low supervision regime (8- to 128-shot). We propose to annotate a small number of examples following our proposed multi-step rationale schema, treating each reasoning step as a separate task to be performed by a generative language model. We show that our framework leads to improved control over the difficulty of the generated questions and better performance compared to baselines trained without rationales, both on automatic evaluation metrics and in human evaluation. Importantly, we show that this is achievable with a modest model size.
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