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October 20, 20250 citationsOpen Access

SwarmAgentic: Towards Fully Automated Agentic System Generation via Swarm Intelligence

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YZYao ZhangCLChenyang LinSTShijie Tang

Key Points

  • SwarmAgentic achieves a 261.8% performance improvement over existing methods on benchmark tasks.
  • The framework evolves candidate systems using feedback-guided updates inspired by swarm intelligence.
  • It generates agentic systems from scratch, enhancing their functionality and collaboration for greater scalability.
  • Evaluation across exploratory tasks demonstrates significant advancements in fully automated system design.

Abstract

The rapid progress of Large Language Models has advanced agentic systems in decision-making, coordination, and task execution. Yet, existing agentic system generation frameworks lack full autonomy, missing from-scratch agent generation, self-optimizing agent functionality, and collaboration, limiting adaptability and scalability. We propose SwarmAgentic, a framework for fully automated agentic system generation that constructs agentic systems from scratch and jointly optimizes agent functionality and collaboration as interdependent components through language-driven exploration. To enable efficient search over system-level structures, SwarmAgentic maintains a population of candidate systems and evolves them via feedback-guided updates, drawing inspiration from Particle Swarm Optimization (PSO). We evaluate our method on six real-world, open-ended, and exploratory tasks involving high-level planning, system-level coordination, and creative reasoning. Given only a task description and an objective function, SwarmAgentic outperforms all baselines, achieving a +261.8% relative improvement over ADAS on the TravelPlanner benchmark, highlighting the effectiveness of full automation in structurally unconstrained tasks. This framework marks a significant step toward scalable and autonomous agentic system design, bridging swarm intelligence with fully automated system multi-agent generation. Our code is publicly released at https://yaoz720.github.io/SwarmAgentic/.

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Cite This Study

Zhang et al. (2025) studied this question.

synapsesocial.com/papers/68f6379bb481a140a36cf833https://doi.org/10.48550/arxiv.2506.15672
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