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異構無人系統協同控制研究進展

Research progress for cooperative control of heterogeneous unmanned systems

  • 摘要: 面對復雜化、多樣化和立體化的任務需求,異構無人系統將空、地、海跨域優勢互補,最大化提升系統各方面能力,為未來協同作戰和智慧民生提供有力的技術保障. 首先,梳理了國內外在跨域協同領域出臺的推動性文件,介紹了異構無人系統在軍用、科研院所和民用等三方面的實際應用. 其次,針對異構無人系統關鍵技術之一的協同控制,分別闡述了異構無人系統協同控制在一致性、軌跡跟蹤和編隊?合圍等三方面的最新進展. 此外,還特別討論了在不同通信條件下協同控制所面臨的挑戰和解決方案. 其中,由于一致性和軌跡跟蹤存在上層控制理論性和下層控制可行性的區別,進一步從滑模控制、自適應控制、反步控制和自適應動態規劃等四方面對軌跡跟蹤研究展開闡述. 然后,為了更好地促進異構無人系統協同控制在實際中的應用,通過總結前人相關工作,討論了其在多約束控制與實時性、多任務切換控制和跨域通信下穩定性等三方面亟需解決的技術瓶頸. 最后,綜合異構無人系統協同控制研究現狀和實際需求來看,指出了其在深度強化學習與分布式博弈、人機交互以及反群體智能等三方面的發展趨勢.

     

    Abstract: Recent advancements in artificial intelligence and control theory have significantly enhanced unmanned systems, endowing them with remarkable capabilities, such as autonomy, self-learning, and scalability. These innovations are pushing unmanned systems toward more distributed and collaborative operational modes. However, the requirements for complex, diverse and stereoscopic missions pose great challenges to unmanned systems. To address such issues, cross-domain collaboration across air, land, and maritime environments using heterogeneous unmanned systems (HUS) offers a promising solution. Such collaboration not only boosts individual system capabilities but also builds a technological foundation for future cooperative operations and smart living scenarios. This paper provides a comprehensive review of the literature on cross-domain collaboration from both domestic and international perspectives. It also discusses the practical engineering applications of HUS in military, scientific research, and civilian fields. Currently, technological progress in this field has been notably spurred by military powers, particularly the United States, the United Kingdom, and France. Although China’s development is still in its nascent stages, it has made significant strides in theoretical and technological research. Research into cross-domain collaboration of HUS involves sophisticated theoretical frameworks and interdisciplinary integration. This paper elaborates on the latest research developments in collaborative control of HUS, focusing on four aspects: consensus, trajectory tracking, formation-containment, and diverse communication scenarios. Given the difference between the theoretical aspects of upper-level control and the feasibility of lower-level control, research on trajectory tracking methods is divided into four main types: sliding mode control, adaptive control, backstepping control, and adaptive dynamic programming. Each control method has its unique strengths, limitations, and suitable scenarios. Despite the rich body of research on cooperative control of HUS, numerous challenges remain in dealing with unknown and complex environments. This paper summarizes previous relevant work and underscores technical challenges across three primary areas: the conflict between multiple constraints and real-time task performance, the issue of multitask switching control, and the problem of maintaining control stability problem under cross-domain communication. Concrete examples are provided to elucidate the difficulties in achieving effective collaborative control for HUS. Based on the current research status and practical requirements for collaborative control of HUS, future development will likely focus on three key areas: deep reinforcement learning and distributed games, human–machine interaction, and antiswarm intelligence. In summary, the broad applicability and strategic importance of collaborative control of HUS have attracted attention from leading military powers, solidifying its status as a pivotal area of technological innovation.

     

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