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Sequential Monte Carlo methods for complexity-constrained MAP equalization of dispersive MIMO channels

机译:用于复杂度受限的色散MIMO信道MAP均衡的顺序蒙特卡罗方法

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The ability to perform nearly optimal equalization of multiple input multiple output (MIMO) wireless channels using sequential Monte Carlo (SMC) techniques has recently been demonstrated. SMC methods allow to recursively approximate the a posteriori probabilities of the transmitted symbols, as observations are sequentially collected, using samples from adequate probability distributions. Hence, they are a class of online (adaptive) algorithms, suitable to handle the time-varying channels typical of high speed mobile communication applications. The main drawback of the SMC-based MIMO-channel equalizers so far proposed is that their computational complexity grows exponentially with the number of input data streams and the length of the channel impulse response, rendering these methods impractical. In this paper, we introduce novel SMC schemes that overcome this limitation by the adequate design of proposal probability distribution functions that can be sampled with a lesser computational burden, yet provide a close-to-optimal performance in terms of the resulting equalizer bit error rate and channel estimation error. We show that the complexity of the resulting receivers grows polynomially with the number of input data streams and the length of the channel response, and present computer simulation results that illustrate their performance in some typical scenarios.
机译:最近已经证明了使用顺序蒙特卡洛(SMC)技术执行多输入多输出(MIMO)无线信道的近乎最佳均衡的能力。 SMC方法允许使用来自适当概率分布的样本顺序地收集观测值,从而递归地近似传输符号的后验概率。因此,它们是一类在线(自适应)算法,适用于处理高速移动通信应用中典型的时变信道。迄今为止提出的基于SMC的MIMO信道均衡器的主要缺点是,其计算复杂度随着输入数据流的数量和信道脉冲响应的长度呈指数增长,这使得这些方法不切实际。在本文中,我们介绍了新颖的SMC方案,该方案通过适当设计建议概率分布函数来克服此限制,该提议概率分布函数可以用较少的计算负担进行采样,但在产生的均衡器误码率方面提供接近最佳的性能和信道估计误差。我们表明,结果接收器的复杂度随输入数据流的数量和信道响应的长度成倍增长,并给出了计算机仿真结果,说明了它们在某些典型情况下的性能。

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