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Bi-velocity discrete particle swarm optimization and its application to multicast routing problem in communication networks

机译:双速离散粒子群优化算法及其在通信网络组播路由问题中的应用

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摘要

This paper proposes a novel bi-velocity discrete particle swarm optimization (BVDPSO) approach and extends its application to the NP-complete multicast routing problem (MRP). The main contribution is the extension of PSO from continuous domain to the binary or discrete domain. Firstly, a novel bi-velocity strategy is developed to represent possibilities of each dimension being 1 and 0. This strategy is suitable to describe the binary characteristic of the MRP where 1 stands for a node being selected to construct the multicast tree while 0 stands for being otherwise. Secondly, BVDPSO updates the velocity and position according to the learning mechanism of the original PSO in continuous domain. This maintains the fast convergence speed and global search ability of the original PSO. Experiments are comprehensively conducted on all of the 58 instances with small, medium, and large scales in the OR-library (Operation Research Library). The results confirm that BVDPSO can obtain optimal or near-optimal solutions rapidly as it only needs to generate a few multicast trees. BVDPSO outperforms not only several state-of-the-art and recent heuristic algorithms for the MRP problems, but also algorithms based on GA, ACO, and PSO.
机译:本文提出了一种新颖的双速离散粒子群优化(BVDPSO)方法,并将其应用扩展到NP完全组播路由问题(MRP)。主要贡献是PSO从连续域扩展到二进制域或离散域。首先,开发了一种新颖的双速策略来表示每个维数分别为1和0的可能性。该策略适合描述MRP的二进制特性,其中1代表被选择用来构建组播树的节点,而0代表被选择的节点。否则。其次,BVDPSO根据原始PSO在连续域中的学习机制更新速度和位置。这样可以保持原始PSO的快速收敛速度和全局搜索能力。在OR图书馆(运营研究库)中,对58个实例进行了全面的实验,包括小型,中型和大型。结果证实,由于BVDPSO只需要生成少量的多播树,因此可以快速获得最佳或接近最佳的解决方案。 BVDPSO不仅优于针对MRP问题的几种最新算法和启发式算法,而且也优于基于GA,ACO和PSO的算法。

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