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Distributed Low-Overhead Schemes for Multi-Stream MIMO Interference Channels

机译:多流MIMO干扰信道的分布式低开销方案

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摘要

Our aim in this paper is to propose fully distributed schemes for transmit and receive filter optimization. The novelty of the proposed schemes is that they only require a few forward-backward iterations, thus causing minimal communication overhead. For that purpose, we relax the well-known leakage minimization problem, and then propose two different filter update structures to solve the resulting nonconvex problem: though one leads to conventional full-rank filters, the other results in rank-deficient filters, that we exploit to gradually reduce the transmit and receive filter rank, and greatly speed up the convergence. Furthermore, inspired from the decoding of turbo codes, we propose a turbo-like structure to the algorithms, where a separate inner optimization loop is run at each receiver (in addition to the main forward-backward iteration). In that sense, the introduction of this turbo-like structure converts the communication overhead required by conventional methods to computational overhead at each receiver (a cheap resource), allowing us to achieve the desired performance, under a minimal overhead constraint. Finally, we show through comprehensive simulations that both proposed schemes hugely outperform the relevant benchmarks, especially for large system dimensions.
机译:本文的目的是提出用于发送和接收滤波器优化的全分布式方案。所提出的方案的新颖性在于它们仅需要一些向前-向后的迭代,从而导致最小的通信开销。为此,我们放宽了众所周知的泄漏最小化问题,然后提出了两种不同的滤波器更新结构来解决由此产生的非凸问题:尽管一个导致了常规的全秩滤波器,但另一个导致了秩不足的滤波器,即利用该方法逐渐降低收发滤波器的等级,并大大加快收敛速度​​。此外,受Turbo代码解码的启发,我们为算法提出了一种类似Turbo的结构,其中在每个接收器上运行一个单独的内部优化循环(除了主要的前向后迭代之外)。从这个意义上讲,这种类似turbo的结构的引入将常规方法所需的通信开销转换为每个接收器的计算开销(一种廉价的资源),从而使我们能够在最小的开销约束下实现所需的性能。最后,我们通过全面的仿真表明,这两个提议的方案都大大超过了相关的基准,特别是对于大型系统而言。

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