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August 28, 20240 citationsOpen Access

BattleAgentBench: A Benchmark for Evaluating Cooperation and Competition Capabilities of Language Models in Multi-Agent Systems

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WWWei WangDZDan ZhangFTFeng Tao

Key Points

  • API-based models excel at simple tasks, whereas open-source small models often struggle with even basic tasks.
  • Extensive evaluations were conducted on four closed-source and seven open-source models on various tasks.
  • Tasks were categorized into three difficulty levels, focusing on single-agent, paired-agent, and multi-agent capabilities for fine-grained evaluation results.  Although API-based models show collaborative potential, significant improvements are needed for complex interactions.

Abstract

Large Language Models (LLMs) are becoming increasingly powerful and capable of handling complex tasks, e.g., building single agents and multi-agent systems. Compared to single agents, multi-agent systems have higher requirements for the collaboration capabilities of language models. Many benchmarks are proposed to evaluate their collaborative abilities. However, these benchmarks lack fine-grained evaluations of LLM collaborative capabilities. Additionally, multi-agent collaborative and competitive scenarios are ignored in existing works. To address these two problems, we propose a benchmark, called BattleAgentBench, which defines seven sub-stages of three varying difficulty levels and conducts a fine-grained evaluation of language models in terms of single-agent scenario navigation capabilities, paired-agent task execution abilities, and multi-agent collaboration and competition capabilities. We conducted extensive evaluations on leading four closed-source and seven open-source models. Experimental results indicate that API-based models perform excellently on simple tasks but open-source small models struggle with simple tasks. Regarding difficult tasks that require collaborative and competitive abilities, although API-based models have demonstrated some collaborative capabilities, there is still enormous room for improvement.

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Cite This Study

Wang et al. (2024) studied this question.

synapsesocial.com/papers/68e5aa5eb6db6435875448a3https://doi.org/10.48550/arxiv.2408.15971
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