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Joint transmit beamforming and antenna selection for energy efficiency maximization in MISO downlink

机译:在MISO下行链路中联合发射波束成形和天线选择以实现能量效率最大化

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We study the joint beamforming and antenna selection problem for energy efficiency maximization in multi-user multiple-input single-output (MISO) downlink channel. By viewing antenna selection as finding a sparse solution, we first introduce a sparsity-inducing regularization term to the design problem. Since the resulting problem is nonconvex, it is difficult to find an optimal solution, and we apply a local optimization method based on the concept of sequential convex approximation (SCA) to solve this problem. By proper reformulations we arrive at a fast converging iterative algorithm, where a convex program is solved at each iteration. In the first design, we simply ignore antennas of which the associated beamformers are nearly zero and select the remaining ones. In the second design, we further perform the search over the selected antennas of the first design to improve the energy efficiency. Numerical results demonstrate remarkable performance gains of the proposed approaches in terms of energy efficiency over the solution without antenna selection.
机译:我们研究联合波束成形和天线选择问题,以实现多用户多输入单输出(MISO)下行链路信道中的能量效率最大化。通过将天线选择视为一种稀疏解决方案,我们首先将一个引起稀疏性的正则化项引入设计问题。由于产生的问题是非凸的,因此很难找到最优解,因此我们基于序贯凸逼近(SCA)概念应用了局部优化方法来解决此问题。通过适当的重构,我们得出一种快速收敛的迭代算法,该算法在每次迭代时都求解一个凸程序。在第一种设计中,我们仅忽略与之相关的波束形成器接近零的天线,然后选择其余的天线。在第二种设计中,我们进一步在第一种设计的选定天线上执行搜索,以提高能效。数值结果表明,在不选择天线的情况下,该解决方案在解决方案的能效方面具有显着的性能提升。

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