基于压缩感知的GFDM迭代信道估计算法

Jinnian Zhang, Yan Li, K. Niu
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引用次数: 5

摘要

通用频分复用技术(GFDM)是第五代(5G)蜂窝系统物理层的一种很有前途的解决方案,因为它的灵活性可以满足不同的应用需求。然而,由于脉冲整形,接收信号中存在固有干扰,这对基于导频的信道估计产生了负面影响。虽然利用预编码矩阵可以消除对导频符号的干扰,但伴随的发射功率惩罚随着子载波和子符号的非正交性而增加。在我们的工作中,我们提出了一种迭代的接收机干扰消除方法,该方法可以有效地减轻相邻符号对导频的影响,而不会造成发射功率损失。此外,为了提高信道估计的精度,我们采用了压缩感知(CS)技术。仿真结果表明,即使在严重干扰情况下,我们提出的信道估计算法也是有效的,并且通过使用正交匹配追踪(OMP)恢复算法,我们的算法性能可以接近Cramer-Rao界(CRB)。
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Iterative channel estimation algorithm based on compressive sensing for GFDM
Generalized Frequency Division Multiplexing (GFDM) is a promising solution for the cellular system of the fifth generation (5G) PHY layer because its flexibility can address the different application requirements. However, due to the pulse shaping, there is inherent interference existing in the received signal, which has a negative impact on pilot-based channel estimation. Although the interference on the pilot symbols can be eliminated at the transmitter by using precoding matrices, the accompanied transmitting power penalty increases with the non-orthogonality of subcarriers and subsymbols. In our work, we propose an iterative method for interference cancellation at the receiver, which can efficiently mitigate the effect of neighboring symbols on pilots without transmitting power penalty. In addition, to improve the accuracy of channel estimation, we adopt the compressive sensing (CS) technology. Simulation results show that our proposed channel estimation algorithm is efficient even when the interference is severe, and by using orthogonal match pursuit (OMP) recovery algorithm, the performance of our algorithm can be close to the Cramer-Rao bound (CRB).
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