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Beam Squint and Channel Estimation for Wideband mmWave Massive MIMO-OFDM Systems

机译:宽带毫米波大规模MIMO-OFDM系统的波束压缩和信道估计

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With the increasing scale of antenna arrays in wideband millimeter-wave (mmWave) communications, the physical propagation delays of electromagnetic waves traveling across the whole array will become large and comparable to the time-domain sample period, which is known as the spatial-wideband effect. In this case, different subcarriers in an orthogonal frequency division multiplexing (OFDM) system will "see" distinct angles of arrival (AoAs) for the same path. This effect is known as beam squint, resulting from the spatial-wideband effect, and makes the approaches based on the conventional multiple-input multiple-output (MIMO) model, such as channel estimation and precoding, inapplicable. After discussing the relationship between beam squint and the spatial-wideband effect, we propose a channel estimation scheme for frequency-division duplex (FDD) mmWave massive MIMO-OFDM systems with hybrid analog/digital precoding, which takes the beam squint effect into consideration. A compressive sensing-based approach is developed to extract the frequency-insensitive parameters of each uplink channel path, i.e., the AoA and the time delay, and the frequency-sensitive parameter, i.e., the complex channel gain. With the help of the reciprocity of these frequency-insensitive parameters in FDD systems, the downlink channel estimation can be greatly simplified, where only limited pilots are needed to obtain downlink complex gains and reconstruct downlink channels. Furthermore, the uplink and downlink channel covariance matrices can be constructed from these frequency-insensitive channel parameters rather than through a long-term average, which enables the minimum mean-squared error (MMSE) channel estimation to further enhance performance. Numerical results demonstrate the superiority of the proposed scheme over the conventional methods under general system configurations in mmWave communications.
机译:随着宽带毫米波(mmWave)通信中天线阵列规模的增加,在整个阵列中传播的电磁波的物理传播延迟将变得很大,并且可与时域采样周期相媲美,这被称为空间宽带影响。在这种情况下,正交频分复用(OFDM)系统中的不同子载波将“看到”同一路径的不同到达角(AoA)。这种效应被称为波束斜视,是由于空间宽带效应导致的,因此使基于常规多输入多输出(MIMO)模型的方法(例如信道估计和预编码)不适用。在讨论了波束斜视与空间宽带效应之间的关系之后,我们提出了一种采用混合模拟/数字预编码的频分双工(FDD)毫米波大规模MIMO-OFDM系统的信道估计方案,其中考虑了波束斜视效应。开发了基于压缩感测的方法来提取每个上行链路信道路径的频率不敏感参数,即AoA和时间延迟,以及频率敏感参数,即复数信道增益。借助FDD系统中这些对频率不敏感的参数的互易性,可以大大简化下行链路信道估计,其中仅需要有限的导频即可获得下行链路复杂增益并重建下行链路信道。此外,可以从这些对频率不敏感的信道参数而不是通过长期平均值来构造上行链路和下行链路信道协方差矩阵,这可以实现最小均方误差(MMSE)信道估计,从​​而进一步提高性能。数值结果表明,在毫米波通信的一般系统配置下,该方案优于传统方法。

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