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Adaptive Collaboration Systems: Self-Sustaining Systems for Optimal Performance

机译:自适应协作系统:实现最佳性能的自我维持系统

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摘要

Adaptability is a common and typical property for natural systems in the real world. It is also an important and desirable property for computer supported artificial systems. An adaptive collaboration system (ACS) can be viewed as a set of interacting intelligent agents, real or abstract, forming an integrated system that can respond to internal and environmental changes. Feedback is a key feature of such systems because it enables appropriate responses to change. Artificial systems can be made adaptive by using feedback to sense new conditions in the environment and then adjusting accordingly. ACSs can find applications in almost all industrial sectors, particularly in aerospace, automotive, manufacturing, and management. Adaptive collaboration (AC) can be realized through the promising architecture and process of role-based collaboration (RBC) [21]. RBC is a computational methodology that uses roles [21] as primary underlying mechanisms to facilitate collaboration. RBC has been developed into a methodology of discovery in the research of collaboration systems, because it takes advantage of formalizations and abstractions of system components through mathematical expressions. Problem instances of such abstractions are easily found in real-world scenarios.
机译:适应性是现实世界中自然系统的常见特征。对于计算机支持的人工系统,这也是重要且理想的属性。可以将自适应协作系统(ACS)视为一组交互的,真实的或抽象的智能代理,从而形成可以响应内部和环境变化的集成系统。反馈是此类系统的关键功能,因为它可以使适当的响应发生变化。通过使用反馈来感知环境中的新条件,然后进行相应调整,可以使人造系统具有自适应性。 ACS可以在几乎所有工业领域找到应用,尤其是在航空航天,汽车,制造和管理领域。自适应协作(AC)可以通过基于角色的协作(RBC)的有前途的架构和过程来实现[21]。 RBC是一种使用角色[21]作为促进协作的主要基础机制的计算方法。 RBC已被开发为协作系统研究中的发现方法,因为它利用了通过数学表达式对系统组件进行形式化和抽象化的优势。在实际场景中很容易找到此类抽象的问题实例。

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    Haibin Zhu;

  • 作者单位

    Computer Science and Mathematics, Nipissing University, North Bay, P1C1L2 Ontario, Canada;

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