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title booktitle year abstract layout series publisher issn id month tex_title firstpage lastpage page order cycles bibtex_author author date address container-title volume genre issued pdf extras
LogicPrpBank: A Corpus for Logical Implication and Equivalence
Proceedings of the 2024 AAAI Conference on Artificial Intelligence
2024
Logic reasoning has been critically needed in problem-solving and decision-making. Although Language Models (LMs) have demonstrated capabilities of handling multiple reasoning tasks (e.g., commonsense reasoning), their ability to reason complex mathematical problems, specifically propositional logic, remains largely underexplored. This lack of exploration can be attributed to the limited availability of annotated corpora. Here, we present a well-labeled propositional logic corpus, LogicPrpBank, containing 7093 Propositional Logic Statements (PLSs) across six mathematical subjects, to study a brand-new task of reasoning logical implication and equivalence. We benchmark LogicPrpBank with widely-used LMs to show that our corpus offers a useful resource for this challenging task and there is ample room for model improvement.
inproceedings
Proceedings of Machine Learning Research
PMLR
2640-3498
liu24a
0
LogicPrpBank: A Corpus for Logical Implication and Equivalence
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Liu, Zhexiong and Zhang, Jing and Lu, Jiaying and Ma, Wenjing and Ho, Joyce C.
given family
Zhexiong
Liu
given family
Jing
Zhang
given family
Jiaying
Lu
given family
Wenjing
Ma
given family
Joyce C.
Ho
2024-08-09
Proceedings of the 2024 AAAI Conference on Artificial Intelligence
257
inproceedings
date-parts
2024
8
9