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Existing benchmarks do not test language agents on their interaction with human users or ability to follow domain-specific rules, both of which are vital for deploying them in real world applications. We propose -bench, a benchmark emulating dynamic conversations between a user (simulated by language models) and a language agent provided with domain-specific API tools and policy guidelines. We employ an efficient and faithful evaluation process that compares the database state at the end of a conversation with the annotated goal state. We also propose a new metric (passᵏ) to evaluate the reliability of agent behavior over multiple trials. Our experiments show that even state-of-the-art function calling agents (like gpt-4o) succeed on <50% of the tasks, and are quite inconsistent (pass⁸ <25% in retail). Our findings point to the need for methods that can improve the ability of agents to act consistently and follow rules reliably.
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Yao et al. (Mon,) studied this question.
www.synapsesocial.com/papers/68e6467eb6db6435875d7ce1 — DOI: https://doi.org/10.48550/arxiv.2406.12045
Shunyu Yao
Noah Shinn
Pedram Razavi
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