Red Teaming for Large Language Models At Scale: Tackling Hallucinations on Mathematics Tasks

December 30, 2023 ยท Declared Dead ยท ๐Ÿ› ARTOFSAFETY

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Authors Aleksander Buszydlik, Karol Dobiczek, Michaล‚ Teodor Okoล„, Konrad Skublicki, Philip Lippmann, Jie Yang arXiv ID 2401.00290 Category cs.CL: Computation & Language Cross-listed cs.AI Citations 5 Venue ARTOFSAFETY Last Checked 5 months ago
Abstract
We consider the problem of red teaming LLMs on elementary calculations and algebraic tasks to evaluate how various prompting techniques affect the quality of outputs. We present a framework to procedurally generate numerical questions and puzzles, and compare the results with and without the application of several red teaming techniques. Our findings suggest that even though structured reasoning and providing worked-out examples slow down the deterioration of the quality of answers, the gpt-3.5-turbo and gpt-4 models are not well suited for elementary calculations and reasoning tasks, also when being red teamed.
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