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首页> 外文期刊>IEEE Antennas and Wireless Propagation Letters >Design of Compact High-Isolation MIMO Antenna With Multiobjective Mixed Optimization Algorithm
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Design of Compact High-Isolation MIMO Antenna With Multiobjective Mixed Optimization Algorithm

机译:具有多目标混合优化算法的紧凑型高隔离MIMO天线设计

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摘要

Integrating particle swarm optimization (PSO) and binary PSO into multiobjective evolutionary algorithm based on decomposition (MOEA/D) by group operator in parallel, an improved mixed optimization algorithm MOEA/D-M is proposed as an automation design scheme for compact high-isolation multiple-input-multiple-output (MIMO) antenna design. When the algorithm runs, each particle has several neighboring particles and all the particles are subdivided into a few groups. Both groups and neighborhoods provide helpful or potential information to their members. Then, under predefined constraints, MIMO antenna with anticipated performance can be generated intelligently and targetedly. The effectiveness of this design scheme is demonstrated by a single-band and a dual-band compact high-isolation MIMO antenna design for wireless local area network (WLAN)/world interoperability for microwave access (WiMAX) applications sharing the same initial reference model. The design degree of freedom of MIMO antennas may be increased greatly with the proposed design technique.
机译:将粒子群优化(PSO)和二进制PSO与分解(MOEA / D)并行地集成到多目标进化算法中,提出了一种改进的混合优化算法MOEA / DM作为紧凑高隔离的自动化设计方案输入 - 多输出(MIMO)天线设计。当算法运行时,每个颗粒具有几个相邻颗粒,并且所有颗粒都被细分为几组。两组和社区都向其成员提供有用或潜在的信息。然后,在预定约束下,可以智能地且靶向具有预期性能的MIMO天线。这种设计方案的有效性由单频带和双频频带紧凑的高隔离MIMO天线设计来证明用于无线局域网(WLAN)/世界互操作性的用于微波接入(WiMAX)应用共享相同的初始参考模型。利用所提出的设计技术,可以大大增加MIMO天线自由度的设计程度。

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