用大模型将工程意图自动转为可执行的6G感知通信系统配置
From Intent to Infrastructure: LLM-Driven Agent Compilers for ISAC Networks

- 大模型分四步解析意图,生成可验证的策略图
- 支持快速参数调优、局部重编和全流程重编
- 适合6G系统设计者与自动化部署研究者
集成感知与通信(ISAC)正从概念验证迈向6G网络的系统级部署。由于感知与通信共享硬件、频谱和波形资源,系统设计涉及波形选择、感知算法配置、资源调度和部署规划等紧密耦合的决策,传统手动调优或孤立优化已难应对。本文提出 extit{Agent Compiler}——一种基于大语言模型(LLM)的编译层,可将高层工程意图转化为完整且可执行的ISAC系统配置。该编译器包含四个阶段:意图解析、任务分解、策略图合成与基础设施映射,生成可验证的中间表示——ISAC策略图(IPG)。运行时引擎部署配置并支持三层闭环适应:快速参数更新、受影响子图的部分重编,以及全流程重编。核心原则是严格的时间尺度分离:大模型负责慢周期战略决策,成熟算法维持快周期实时控制。无人机辅助灾后救援案例展示了完整编译流程。文章还讨论了编译延迟、输出可靠性、约束验证与管道安全等开放问题,以指引未来研究。
原文摘要 · Abstract (English)
Integrated sensing and communications (ISAC) is moving from proof-of-concept demonstrations to system-level deployment in sixth-generation (6G) networks. Because sensing and communication share hardware, spectrum, and waveform resources, ISAC design now involves many tightly coupled choices, including waveform selection, sensing algorithm setup, resource scheduling, and deployment planning. This design space is already too large to manage well through manual tuning or isolated optimizers. This article introduces the \textit{Agent Compiler}, a large language model (LLM)-enabled compilation layer that translates high-level engineering intent into complete and executable ISAC system configurations. The Agent Compiler works in four stages: intent parsing, task decomposition, policy graph synthesis, and infrastructure mapping. It produces a verifiable intermediate representation called the ISAC Policy Graph (IPG). A runtime engine then deploys the compiled configuration and supports closed-loop adaptation at three levels: fast parameter updates, partial recompilation of affected subgraphs, and full workflow recompilation. The core design principle is strict time-scale separation: the LLM handles slow-loop strategic decisions, while proven algorithms retain real-time control in the fast loop. A UAV-assisted disaster rescue example illustrates the full compilation process. We also discuss open issues, including compilation latency, output reliability, constraint verification, and pipeline security, to guide future research.
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