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An Off-Grid Turbo Channel Estimation Algorithm for Millimeter Wave Communications

The bandwidth shortage has motivated the exploration of the millimeter wave (mmWave) frequency spectrum for future communication networks. To compensate for the severe propagation attenuation in the mmWave band, massive antenna arrays can be adopted at both the transmitter and receiver to provide la...

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Autores principales: Han, Lingyi, Peng, Yuexing, Wang, Peng, Li, Yonghui
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5087351/
https://www.ncbi.nlm.nih.gov/pubmed/27669244
http://dx.doi.org/10.3390/s16101562
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author Han, Lingyi
Peng, Yuexing
Wang, Peng
Li, Yonghui
author_facet Han, Lingyi
Peng, Yuexing
Wang, Peng
Li, Yonghui
author_sort Han, Lingyi
collection PubMed
description The bandwidth shortage has motivated the exploration of the millimeter wave (mmWave) frequency spectrum for future communication networks. To compensate for the severe propagation attenuation in the mmWave band, massive antenna arrays can be adopted at both the transmitter and receiver to provide large array gains via directional beamforming. To achieve such array gains, channel estimation (CE) with high resolution and low latency is of great importance for mmWave communications. However, classic super-resolution subspace CE methods such as multiple signal classification (MUSIC) and estimation of signal parameters via rotation invariant technique (ESPRIT) cannot be applied here due to RF chain constraints. In this paper, an enhanced CE algorithm is developed for the off-grid problem when quantizing the angles of mmWave channel in the spatial domain where off-grid problem refers to the scenario that angles do not lie on the quantization grids with high probability, and it results in power leakage and severe reduction of the CE performance. A new model is first proposed to formulate the off-grid problem. The new model divides the continuously-distributed angle into a quantized discrete grid part, referred to as the integral grid angle, and an offset part, termed fractional off-grid angle. Accordingly, an iterative off-grid turbo CE (IOTCE) algorithm is proposed to renew and upgrade the CE between the integral grid part and the fractional off-grid part under the Turbo principle. By fully exploiting the sparse structure of mmWave channels, the integral grid part is estimated by a soft-decoding based compressed sensing (CS) method called improved turbo compressed channel sensing (ITCCS). It iteratively updates the soft information between the linear minimum mean square error (LMMSE) estimator and the sparsity combiner. Monte Carlo simulations are presented to evaluate the performance of the proposed method, and the results show that it enhances the angle detection resolution greatly.
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spelling pubmed-50873512016-11-07 An Off-Grid Turbo Channel Estimation Algorithm for Millimeter Wave Communications Han, Lingyi Peng, Yuexing Wang, Peng Li, Yonghui Sensors (Basel) Article The bandwidth shortage has motivated the exploration of the millimeter wave (mmWave) frequency spectrum for future communication networks. To compensate for the severe propagation attenuation in the mmWave band, massive antenna arrays can be adopted at both the transmitter and receiver to provide large array gains via directional beamforming. To achieve such array gains, channel estimation (CE) with high resolution and low latency is of great importance for mmWave communications. However, classic super-resolution subspace CE methods such as multiple signal classification (MUSIC) and estimation of signal parameters via rotation invariant technique (ESPRIT) cannot be applied here due to RF chain constraints. In this paper, an enhanced CE algorithm is developed for the off-grid problem when quantizing the angles of mmWave channel in the spatial domain where off-grid problem refers to the scenario that angles do not lie on the quantization grids with high probability, and it results in power leakage and severe reduction of the CE performance. A new model is first proposed to formulate the off-grid problem. The new model divides the continuously-distributed angle into a quantized discrete grid part, referred to as the integral grid angle, and an offset part, termed fractional off-grid angle. Accordingly, an iterative off-grid turbo CE (IOTCE) algorithm is proposed to renew and upgrade the CE between the integral grid part and the fractional off-grid part under the Turbo principle. By fully exploiting the sparse structure of mmWave channels, the integral grid part is estimated by a soft-decoding based compressed sensing (CS) method called improved turbo compressed channel sensing (ITCCS). It iteratively updates the soft information between the linear minimum mean square error (LMMSE) estimator and the sparsity combiner. Monte Carlo simulations are presented to evaluate the performance of the proposed method, and the results show that it enhances the angle detection resolution greatly. MDPI 2016-09-22 /pmc/articles/PMC5087351/ /pubmed/27669244 http://dx.doi.org/10.3390/s16101562 Text en © 2016 by the authors; licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC-BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Han, Lingyi
Peng, Yuexing
Wang, Peng
Li, Yonghui
An Off-Grid Turbo Channel Estimation Algorithm for Millimeter Wave Communications
title An Off-Grid Turbo Channel Estimation Algorithm for Millimeter Wave Communications
title_full An Off-Grid Turbo Channel Estimation Algorithm for Millimeter Wave Communications
title_fullStr An Off-Grid Turbo Channel Estimation Algorithm for Millimeter Wave Communications
title_full_unstemmed An Off-Grid Turbo Channel Estimation Algorithm for Millimeter Wave Communications
title_short An Off-Grid Turbo Channel Estimation Algorithm for Millimeter Wave Communications
title_sort off-grid turbo channel estimation algorithm for millimeter wave communications
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5087351/
https://www.ncbi.nlm.nih.gov/pubmed/27669244
http://dx.doi.org/10.3390/s16101562
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