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Efficient Channel Estimation in Millimeter Wave Hybrid MIMO Systems with Low Resolution ADCs

机译:具有低分辨率ADC的毫米波混合MIMO系统中的高效信道估计

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摘要

This paper proposes an efficient channel estimation algorithm for millimeter wave (mmWave) systems with a hybrid analog-digital multiple-input multiple-output (MIMO) architecture and few-bits quantization at the receiver. The sparsity of the mmWave MIMO channel is exploited for the problem formulation while limited resolution analog-to-digital converters (ADCs) are used in the receiver architecture. The estimation problem can be tackled using compressed sensing through the Stein's unbiased risk estimate (SURE) based parametric denoiser with the generalized approximate message passing (GAMP) framework. Expectation-maximization (EM) density estimation is used to avoid the need of specifying channel statistics resulting the EM-SURE-GAMP algorithm to estimate the channel. SURE, depending on the noisy observation, is minimized to adaptively optimize the denoiser within the parametric class at each iteration. The proposed solution is compared with the expectation-maximization generalized AMP (EM-GAMP) solution and the mean square error (MSE) performs better with respect to low and high signal-to-noise ratio (SNR) regimes, the number of ADC bits, and the training length. The use of the low resolution ADCs reduces power consumption and leads to an efficient mmWave MIMO system.
机译:本文提出了一种用于毫米波(mmWave)系统的有效信道估计算法,该系统具有混合模数多输入多输出(MIMO)体系结构,并且在接收器处具有几位量化功能。 mmWave MIMO信道的稀疏性被用于问题制定,而在接收器体系结构中使用了有限分辨率的模数转换器(ADC)。可以通过基于通用近似消息传递(GAMP)框架的基于Stein的无偏风险估计(SURE)的参数去噪器的压缩感测来解决估计问题。期望最大化(EM)密度估计用于避免指定信道统计信息的需要,从而产生EM-SURE-GAMP算法来估计信道。根据噪声观察,将SURE最小化,以在每次迭代时自适应地优化参数类内的降噪器。将所提出的解决方案与期望最大化广义AMP(EM-GAMP)解决方案进行比较,并且在低信噪比(SNR)和ADC位数方面,均方误差(MSE)的性能更好,以及训练时长。低分辨率ADC的使用降低了功耗,并导致了高效的mmWave MIMO系统。

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