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Investigation of Simulated annealing, ant-colony optimization, and genetic algorithms for self-structuring antennas

机译:自构天线的模拟退火,蚁群优化和遗传算法研究

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摘要

A self-structuring antenna (SSA) is capable of arranging itself into a large number of configurations. Because the properties of the configurations are generally unknown at the onset of operation, efficient search algorithms are required to find suitable configurations for a given set of environmental and operational conditions. This paper investigates the use of ant-colony optimization, simulated annealing, and genetic algorithms for finding suitable antenna states. The implementation of each algorithm for SSA searches is described, and the performance of each algorithm is compared to a random search.
机译:自构造天线(SSA)能够将自己布置成多种配置。由于配置的属性通常在操作开始时是未知的,因此需要有效的搜索算法才能为给定的一组环境和操作条件找到合适的配置。本文研究了使用蚁群优化,模拟退火和遗传算法来寻找合适的天线状态。描述了用于SSA搜索的每种算法的实现,并将每种算法的性能与随机搜索进行了比较。

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