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Distributed Task Selection in Multi-agent Based Swarms Using Heuristic Strategies

机译:使用启发式策略的多智能体群分布式任务选择

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Swarm-based systems have emerged as an attractive paradigm for implementing distributed autonomous systems for various applications in commercial, military and business domains. One of the major operations in a swarm-based system is to ensure that the individual swarm units process the tasks in the environment in an efficient manner. This can be achieved using a suitable task selection mechanism that allocates the desired number of swarm units to each task while reducing inter-task latencies and communication overhead, and, ensuring adequate commitment of resources to tasks. In this paper, we describe a multi-agent based distributed task selection mechanism for swarm-based systems. We show that the distributed task selection problem is NP-complete and propose polynomial-time heuristic-based algorithms. Our simulation results show that heuristics in which each swarm unit considers both the effects of other swarm units on tasks and its own relative position to other swarm units achieve better task processing efficiency and improved distribution of swarm units over tasks.
机译:基于群体的系统被出现为用于在商业,军事和商业领域的各种应用中实施分布式自治系统的有吸引力的范式。基于群体的系统中的一个主要操作之一是确保各种群体单位以有效的方式处理环境中的任务。这可以使用合适的任务选择机制来实现,该机制将所需数量的群体单位分配给每个任务,同时减少任务间延迟和通信开销,并确保对任务的资源充分承诺。在本文中,我们描述了一种基于群体的基于多功能的分布式任务选择机制。我们表明分布式任务选择问题是NP-Complete,并提出基于多项式的启发式算法。我们的仿真结果表明,每个群体单位考虑其他群体单位对任务的影响以及其自身相对位置的启发式,以实现更好的任务处理效率,并改善了群体单位的任务。

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