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Semi-Flocking-Controlled Mobile Sensor Networks for Tracking Targets with Different Priorities

机译:半群控制的移动传感器网络,用于跟踪具有不同优先级的目标

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Semi-flocking algorithms have been demonstrated to be efficient in maneuvering MSNs in multi-target tracking tasks. In many real-world applications, targets can be assigned with different priorities according to their importance of being tracked. However, existing semi-flocking algorithms normally assume the importance of all targets to be identical, which may not allocate resources in an efficient manner. In this paper, we propose a target evaluation method that incorporates priorities of the targets in the assessment process. Based on the evaluation results, mobile agents decide to track a target or continue to scan the terrain via a probabilistic task switching mechanism. Simulation results indicate a higher effectiveness of the proposed method in target tracking and area coverage when compared with two existing semi-flocking algorithms.
机译:在多目标跟踪任务中,半群算法已被证明可以有效地操纵MSN。在许多实际应用中,可以根据目标的重要性将目标分配给不同的优先级。但是,现有的半集群算法通常假定所有目标的重要性都相同,因此可能无法以有效的方式分配资源。在本文中,我们提出了一种目标评估方法,该方法将目标优先级纳入评估过程。根据评估结果,移动代理决定通过概率任务切换机制来跟踪目标或继续扫描地形。仿真结果表明,与两种现有的半群算法相比,该方法在目标跟踪和区域覆盖方面具有更高的有效性。

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