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Superimposed training based estimation of sparse MIMO channels for emerging wireless networks

机译:基于叠加训练的新兴无线网络稀疏MIMO信道估计

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Multiple-input multiple-output (MIMO) systems constitute an important part of todays wireless communication standards and these systems are expected to take a fundamental role in both the access and backhaul sides of the emerging wireless cellular networks. Recently, reported measurement campaigns have established that various outdoor radio propagation environments exhibit sparsely structured channel impulse response (CIR). We propose a novel superimposed training (SiT) based up-link channels' estimation technique for multi-path sparse MIMO communication channels using a matching pursuit (MP) algorithm; the proposed technique is herein named as superimposed matching pursuit (SI-MP). Subsequently, we evaluate the performance of the proposed technique in terms of mean-square error (MSE) and bit-error-rate (BER), and provide its comparison with that of the notable first order statistics based superimposed least squares (SI-LS) estimation. It is established that the proposed SI-MP provides an improvement of about 2dB in the MSE at signal-to-noise ratio (SNR) of 12dB as compared to SI-LS, for channel sparsity level of 21.5%. For BER = 10¿¿¿2, the proposed SI-MP compared to SI-LS offers a gain of about 3dB in the SNR. Moreover, our results demonstrate that an increase in the channel sparsity further enhances the performance gain.
机译:多输入多输出(MIMO)系统构成了当今无线通信标准的重要组成部分,预计这些系统将在新兴的无线蜂窝网络的接入和回程侧均发挥基本作用。近来,报道的测量活动已经确定了各种户外无线电传播环境表现出稀疏结构化的信道脉冲响应(CIR)。我们提出了一种新的基于叠加训练(SiT)的上行链路信道估计技术,该算法使用匹配追踪(MP)算法进行多路径稀疏MIMO通信信道的估计;所提出的技术在本文中被称为叠加匹配追踪(SI-MP)。随后,我们根据均方误差(MSE)和误码率(BER)评估了所提出技术的性能,并与基于叠加最小二乘法(SI-LS)的著名一阶统计数据进行了比较。 )估算。已经确定,对于21.5%的信道稀疏性水平,与SI-LS相比,所提出的SI-MP在12dB的信噪比(SNR)下可将MSE改善约2dB。对于BER = 10 ?? 2,与SI-LS相比,建议的SI-MP在SNR方面提供约3dB的增益。此外,我们的结果表明,通道稀疏度的增加进一步提高了性能增益。

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