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MIMO Transceiver Optimization With Linear Constraints on Transmitted Signal Covariance Components

机译:发射信号协方差分量上具有线性约束的MIMO收发器优化

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This correspondence revisits the joint transceiver optimization problem for multiple-input multiple-output (MIMO) channels. The linear transceiver as well as the transceiver with linear precoding and decision feedback equalization are considered. For both types of transceivers, in addition to the usual total power constraint, an individual power constraint on each antenna element is also imposed. A number of objective functions including the average bit error rate, are considered for both of the above systems under the generalized power constraint. It is shown that for both types of systems the optimization problem can be solved by first solving a class of MMSE problems (AM-MMSE or GM-MMSE depending on the type of transceiver), and then using majorization theory. The first step, under the generalized power constraint, can be formulated as a semidefinite program (SDP) for both types of transceivers, and can be solved efficiently by convex optimization tools. The second step is addressed by using results from majorization theory. The framework developed here is general enough to add any finite number of linear constraints to the covariance matrix of the input.
机译:该对应关系重新审视了多输入多输出(MIMO)信道的联合收发器优化问题。考虑了线性收发器以及具有线性预编码和判决反馈均衡的收发器。对于两种类型的收发器,除了通常的总功率约束之外,还对每个天线元件施加了单独的功率约束。在广义功率约束下,上述两个系统都考虑了许多目标函数,包括平均误码率。结果表明,对于这两种类型的系统,可以通过首先解决一类MMSE问题(取决于收发器的类型,选择AM-MMSE或GM-MMSE)来解决优化问题,然后使用主化理论。第一步,在广义功率约束下,可以公式化为两种类型的收发器的半定程序(SDP),并且可以通过凸优化工具有效地解决。第二步通过使用专业化理论的结果来解决。这里开发的框架足够通用,可以将任意数量的线性约束添加到输入的协方差矩阵。

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