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arxiv: 2406.12429 · v3 · pith:GT62QOSD · submitted 2024-06-18 · cs.AI

Query Routing for Homogeneous Tools: An Instantiation in the RAG Scenario

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classification cs.AI
keywords toolscosthomogeneousperformancetoolaccomplishachievesaddress
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Current research on tool learning primarily focuses on selecting the most effective tool from a wide array of options, often overlooking cost-effectiveness, a crucial factor in human problem-solving. In this paper, we address the selection of homogeneous tools by predicting both their performance and the associated cost required to accomplish a given task. We then assign queries to the optimal tools in a cost-effective manner. Our experimental results demonstrate that our method achieves higher performance at a lower cost compared to strong baseline approaches.

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