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CRITIC: Large Language Models Can Self-Correct with Tool-Interactive Critiquing

About

Recent developments in large language models (LLMs) have been impressive. However, these models sometimes show inconsistencies and problematic behavior, such as hallucinating facts, generating flawed code, or creating offensive and toxic content. Unlike these models, humans typically utilize external tools to cross-check and refine their initial content, like using a search engine for fact-checking, or a code interpreter for debugging. Inspired by this observation, we introduce a framework called CRITIC that allows LLMs, which are essentially "black boxes" to validate and progressively amend their own outputs in a manner similar to human interaction with tools. More specifically, starting with an initial output, CRITIC interacts with appropriate tools to evaluate certain aspects of the text, and then revises the output based on the feedback obtained during this validation process. Comprehensive evaluations involving free-form question answering, mathematical program synthesis, and toxicity reduction demonstrate that CRITIC consistently enhances the performance of LLMs. Meanwhile, our research highlights the crucial importance of external feedback in promoting the ongoing self-improvement of LLMs.

Zhibin Gou, Zhihong Shao, Yeyun Gong, Yelong Shen, Yujiu Yang, Nan Duan, Weizhu Chen• 2023

Related benchmarks

TaskDatasetResultRank
Instruction FollowingIFEval--
292
Factuality CorrectionVELI5
Mean Factual Precision0.9
64
Factuality CorrectionBio (test)
Precision37
44
Factuality CorrectionASKHIST
Mean Factual Precision0.89
40
Instruction FollowingComplexInstruct Level 2
ISR93.2
32
Instruction SatisfactionCODI
ISR93
27
Factual CorrectionCONFLICTS
ROUGE55
25
Factuality CorrectionBIO dataset
Factual Precision86
24
Factuality CorrectionVELI5 1.0 (test)
Precision (Pr)26
24
Instruction FollowingComplexInstruct Level 1
ISR0.981
23
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