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Optimal WCDMA network planning by multiobjective evolutionary algorithm with problem-specific genetic operation

机译:具有特定问题遗传操作的多目标进化算法优化WCDMA网络规划

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摘要

The wideband code division multiple access (WCDMA) network planning problem requires to determine the location and the configuration parameters of the base stations (BSs) so as to maximize the capacity and minimize the installation cost. This problem can be formulated as a complex set covering problem. Compared to the classical set covering problems, the coverage area of each BS is unknown in advance. This makes that the selection of each BS location and configuration parameters is determined by the location and configuration parameters of the neighbor BSs. Accordingly, we will conduct a competition and cooperation model based on the re-covered area of the BSs to measure the relationship of the BSs. Then, an efficient genetic operation based on this model is proposed to generate new-quality solutions. Further, four BS configuration parameters, i.e., the antenna height, antenna tilt, sector orientation and pilot signal power, are taken into account as well. Since there are too many combination levels of the configuration parameters, an encoding method based on orthogonal design is presented to reduce the search space. Subsequently, we merge the proposed encoding method and genetic operation into the multiobjective evolutionary algorithm-based decomposition (MOEA/D-M2M) to solve the WCDMA network planning problem. Simulation results show the efficacy of the proposed encoding and genetic operation in comparison with the existing counterpart.
机译:宽带码分多址(WCDMA)网络规划问题需要确定基站(BS)的位置和配置参数,以便最大程度地提高容量并最小化安装成本。这个问题可以表述为一个复杂的集合覆盖问题。与经典集合覆盖问题相比,每个BS的覆盖区域是事先未知的。这使得每个BS位置和配置参数的选择由相邻BS的位置和配置参数确定。因此,我们将基于BS的重新覆盖区域进行竞争与合作模型,以衡量BS之间的关系。然后,提出了一种基于该模型的有效遗传算法,以生成新质量的解决方案。此外,还考虑了四个BS配置参数,即天线高度,天线倾斜,扇区方向和导频信号功率。由于配置参数的组合级别太多,因此提出了一种基于正交设计的编码方法以减少搜索空间。随后,我们将提出的编码方法和遗传运算合并到基于多目标进化算法的分解(MOEA / D-M2M)中,以解决WCDMA网络规划问题。仿真结果表明,与现有技术相比,本文提出的编码和遗传操作的有效性。

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