Chain-of-Table
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Chain Of Table
Overview :
Chain-of-Table is a reasoning chain framework for table understanding, specifically designed for tasks such as question answering based on tables and fact verification. It uses tabular data as part of the reasoning chain and guides large language models to perform operation generation and table updates in a contextual learning manner, forming a continuous reasoning chain that demonstrates the reasoning process for given table questions. This reasoning chain contains structured information about intermediate results, enabling more accurate and reliable predictions. Chain-of-Table has achieved new state-of-the-art performance on multiple benchmark tests, including WikiTQ, FeTaQA, and TabFact.
Target Users :
Chain-of-Table can be used for tasks that require reasoning and understanding of tabular data, such as question answering based on tables and fact verification.
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Top Region: US(17.94%)
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Use Cases
In AI research, utilize the Chain-of-Table framework for question answering tasks based on tables.
In the field of data science, leverage Chain-of-Table for table understanding and fact verification.
In the education industry, apply Chain-of-Table to handle learning and testing tasks based on tables.
Features
Table Understanding
Table Question Answering
Fact Verification
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