整合AI、物联网与机器人,构建可自适应的智能系统。
AI-IoT-Robotics Integration: Survey of Frameworks, Emerging Trends, and the Path Toward Connected Robotics
- 提出模块化架构,融合边缘小语言模型与云端大模型协同决策
- 揭示三者集成中互操作性与反馈控制的现存短板
- 适合研究智能机器人系统与物理AI的学者参考
人工智能、物联网与机器人的融合已从未来愿景变为实时、智能且情境感知系统的基础。AI提供感知与推理能力,物联网实现可扩展的感知与通信,机器人则完成具身执行。尽管在AIoT和机器人互联网(IoRT)等两两组合上已有显著进展,但尚未形成全面整合三者的统一设计框架。本文综述了各领域的最新成果,强调边缘端小型语言模型(SLMs)与云端大型语言模型(LLMs)在分布式认知与自主决策中的新兴作用。提出一种符合当前趋势的模块化系统架构,分析了互操作性与反馈控制方面的持续挑战,并按集成深度对现有工作进行分类。研究表明,结合物联网基础设施与机器人代理的混合式SLM-LLM系统,能有效应对实时适应性、可扩展性与可靠性问题。本研究为设计下一代具备模块化、可解释性并在动态环境中持续学习的AI-IoT-机器人生态提供了概念与技术路线图,推动‘互联机器人’与‘物理AI’新范式的实现。
原文摘要 · Abstract (English)
The convergence of Artificial Intelligence, the Internet of Things, and Robotics is no longer a futuristic vision; it is rapidly becoming the foundation of real-time, intelligent, and context-aware systems. AI enables perception and reasoning, IoT provides scalable sensing and communication, and robotics delivers embodied actuation. Despite significant progress in pairwise combinations such as AIoT and the Internet of Robotic Things (IoRT), there remains a lack of unified design frameworks that fully integrate all three. This survey synthesizes the state-of-the-art across these domains, emphasizing the emerging role of Small Language Models (SLMs) at the edge and Large Language Models (LLMs) in the cloud for distributed cognition and autonomous decision-making. We propose a modular system architecture that aligns with these trends, analyze persistent gaps in interoperability and feedback control, and classify existing work by integration depth. Our review highlights how hybrid SLM-LLM systems, when coupled with IoT infrastructure and robotic agents, can address challenges in real-time adaptation, scalability, and reliability. This work offers a conceptual and technical roadmap for designing next-generation AI-IoT-Robotic ecosystems that are modular, interpretable, and capable of learning within dynamic environments, paving the way for the emerging paradigm of Connected Robotics and Physical AI.
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