A Concept for Bio-Agentic Visual Communication: Bridging Swarm Intelligence with Biological Analogues
Bryan Starbuck1, Hanlong Li1, Bryan Cochran1
1George W. Woodruff School of Mechanical Engineering, Georgia Institute of Technology, Atlanta, GA 30332, USA.
Biomimetics (Basel, Switzerland)
|September 26, 2025
Summary
This study translates biological communication strategies into visual signals for unmanned aerial vehicle (UAV) swarms in radio-frequency-denied environments. Motion-based signaling proved highly effective for clear and expressive decentralized communication.
Area of Science:
- Robotics
- Artificial Intelligence
- Bio-inspired Engineering
Background:
- Biological swarms exhibit decentralized, adaptive communication essential for coordination without central control.
- Existing unmanned aerial vehicle (UAV) communication systems face limitations in radio-frequency-denied environments.
Purpose of the Study:
- To develop a bio-inspired visual communication system for UAV swarms operating in radio-frequency-denied environments.
- To translate biological communication principles into a generative visual language for UAV agents.
- To evaluate the effectiveness of bio-agentic communication in preserving and adapting signal meaning.
Main Methods:
- Constructed a configuration space encoding visual messages via trajectories and LED patterns, inspired by natural animal signals (e.g., bee waggle dance, deer flagging).
- Utilized a large language model (LLM) with retrieval-augmented generation (RAG) for interpreting perception data and generating symbolic UAV responses.
- Evaluated the system through five test cases assessing within-modality fidelity and cross-modal translation, using covariance and eigenvalue-decomposition analysis.
Main Results:
- Motion-based signaling demonstrated near-perfect clarity (0.992) and expressiveness (1.000), indicating highly effective decentralized communication.
- LED-only and multi-signal communication achieved high expressiveness (~1.000) but significantly lower clarity (≤0.298).
- The bio-agentic approach supports clear, expressive, and decentralized communication.
Conclusions:
- Biological communication principles can be effectively translated into visual languages for UAV swarms.
- Motion-based visual signaling offers a robust solution for decentralized communication in challenging RF-denied environments.
- Further research is needed to optimize multi-modal signaling for enhanced clarity and expressiveness.
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