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A swarm based approach to adapt the structural dimension of agents' organizations

机译:基于群体的方法来适应代理商组织的结构维度

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One of the well studied issues in multi-agent systems is the standard action-selection problem where a goal task can be performed in different ways, by different agents. Also the sequence of these actions can influence the goal achievement or its quality. This class of problems has been tackled under different approaches. At the high-level coordination one, the specification of the organizational issues is crucial. However, in dynamic environments, agents must be able to adapt to the changing organizational goals, available resources, their relationships to the presence of another agents, and so on. This problem is a key one in multi-agent systems and relates to models of learning and adaptation, such as those observed among social insects. The present paper tackles the process of generating, adapting, and changing multi-agent organization dynamically at system runtime, using a swarm inspired approach. This approach is used here mainly for task allocation with low need of pre-planning and specification, and no need of explicit coordination. The results of our approach and another quantitative one are compared here and it is shown that in dynamic domains, the agents adapt to changes in the organization, just as social insects do.
机译:在多主体系统中,经过充分研究的问题之一是标准的动作选择问题,其中目标任务可以由不同的主体以不同的方式执行。这些动作的顺序也会影响目标的实现或其质量。此类问题已通过不同的方法解决。在高层协调中,组织问题的规范至关重要。但是,在动态环境中,代理必须能够适应不断变化的组织目标,可用资源,它们与其他代理的存在的关系等。这个问题是多主体系统中的关键问题,并且涉及学习和适应的模型,例如在社交昆虫中观察到的模型。本文使用群体启发方法解决了在系统运行时动态生成,调整和更改多代理组织的过程。这种方法在这里主要用于任务分配,不需要预先计划和规范,并且不需要明确的协调。在此比较了我们的方法的结果和另一种定量方法的结果,结果表明,在动态域中,代理人会像社交昆虫一样适应组织的变化。

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