Can Language Models perform Abductive Commonsense Reasoning?
–arXiv.org Artificial Intelligence
Abductive Reasoning is a task of inferring the most plausible hypothesis given a set of observations. In literature, the community has approached to solve this challenge by classifying/generating a likely hypothesis that does not contradict with a past observation and future observation. Some of the most well-known benchmarks that tackle this problem are aNLI and aNLG (pronounced as alpha-NLI and alpha-NLG). In this report, I review over some of the methodologies that were attempted to solve this challenge, re-implement the baseline models, and analyze some of the weaknesses that current approaches have. The code and the re-implemented results are available at this link.
arXiv.org Artificial Intelligence
Jul-7-2022
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- North America > United States > Texas > Tarrant County > Fort Worth (0.04)
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- Research Report (0.50)
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