Natural Language Reasoning, A Survey

Author:

Yu Fei1ORCID,Zhang Hongbo2ORCID,Tiwari Prayag3ORCID,Wang Benyou4ORCID

Affiliation:

1. The Chinese University of Hong Kong - Shenzhen, Shenzhen, China

2. The Chinese University of Hong Kong - Shenzhen, Shenzhen China

3. School of Information Technology, Halmstad University, Halmstad, Sweden

4. School of Data Science, The Chinese University of Hong Kong - Shenzhen, Shenzhen China

Abstract

This survey paper proposes a clearer view of natural language reasoning in the field of Natural Language Processing (NLP), both conceptually and practically. Conceptually, we provide a distinct definition for natural language reasoning in NLP, based on both philosophy and NLP scenarios, discuss what types of tasks require reasoning, and introduce a taxonomy of reasoning. Practically, we conduct a comprehensive literature review on natural language reasoning in NLP, mainly covering classical logical reasoning, natural language inference, multi-hop question answering, and commonsense reasoning. The paper also identifies and views backward reasoning, a powerful paradigm for multi-step reasoning, and introduces defeasible reasoning as one of the most important future directions in natural language reasoning research. We focus on single-modality unstructured natural language text, excluding neuro-symbolic research and mathematical reasoning.

Publisher

Association for Computing Machinery (ACM)

Reference204 articles.

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2. Peter Adam Angeles. 1981. Dictionary of Philosophy. Barnes & Noble Books.

3. Yejin Bang Samuel Cahyawijaya Nayeon Lee Wenliang Dai Dan Su Bryan Wilie Holy Lovenia Ziwei Ji Tiezheng Yu Willy Chung Quyet V. Do Yan Xu and Pascale Fung. 2023. A Multitask Multilingual Multimodal Evaluation of ChatGPT on Reasoning Hallucination and Interactivity. CoRR abs/2302.04023(2023). https://doi.org/10.48550/arXiv.2302.04023 arXiv:2302.04023

4. Qiming Bao Alex Yuxuan Peng Tim Hartill Neset Tan Zhenyun Deng Michael Witbrock and Jiamou Liu. 2022. Multi-Step Deductive Reasoning Over Natural Language: An Empirical Study on Out-of-Distribution Generalisation. The 2nd International Joint Conference on Learning and Reasoning and 16th International Workshop on Neural-Symbolic Learning and Reasoning (IJCLR-NeSy 2022).

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