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Toolken+: Improving LLM Tool Usage with Reranking and a Reject Option

Authors :
Yakovlev, Konstantin
Nikolenko, Sergey
Bout, Andrey
Publication Year :
2024

Abstract

The recently proposed ToolkenGPT tool learning paradigm demonstrates promising performance but suffers from two major issues: first, it cannot benefit from tool documentation, and second, it often makes mistakes in whether to use a tool at all. We introduce Toolken+ that mitigates the first problem by reranking top $k$ tools selected by ToolkenGPT and the second problem with a special "Reject" option such that the model will generate a vocabulary token if "Reject" is ranked first. We demonstrate the effectiveness of Toolken+ on multistep numerical reasoning and tool selection tasks.<br />Comment: EMNLP 2024 Findings

Details

Database :
arXiv
Publication Type :
Report
Accession number :
edsarx.2410.12004
Document Type :
Working Paper