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Joint Channel Estimation, Equalization, and Data Detection for OFDM Systems in the Presence of Very High Mobility

机译:存在非常高移动性的OFDM系统的联合信道估计,均衡和数据检测

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摘要

This paper is concerned with the challenging and timely problem of joint channel estimation, equalization, and data detection for uplink orthogonal frequency division multiplexing (OFDM) systems in the presence of frequency selective and very rapidly time varying channels. The resulting algorithm is based on the space alternating generalized expectation maximization (SAGE) technique which is particularly well suited to multicarrier signal formats leading to a receiver structure that also incorporates interchannel interference (ICI) cancelation. In order to reduce the computational complexity of the algorithm, band-limited, discrete cosine orthogonal basis functions are employed to represent the rapidly time-varying fading channel by the discrete cosine serial expansion coefficients. It is shown that, depending on the normalized Doppler frequency, only a small number of expansion coefficients is sufficient to approximate the channel perfectly and there is no need to know the correlation function of the input signal. In this way, the resulting reduced dimensional channel coefficients are estimated and the data symbols detected iteratively with tractable complexity. The proposed SAGE joint detection algorithm updates the data sequences serially and the channel parameters are updated in parallel, leading to a receiver structure that also incorporates ICI cancelation. Computer simulations show that the cosine transformation represents the time-varying channel very effectively and the proposed algorithm has excellent symbol error rate and channel estimation performance even with a very small number of channel expansion coefficients employed in the algorithm, resulting in substantial reduction of the computational complexity.
机译:本文关注在存在频率选择性和时变非常快的信道的情况下,上行链路正交频分复用(OFDM)系统的联合信道估计,均衡和数据检测的挑战性和及时性问题。所得算法基于空间交替广义期望最大化(SAGE)技术,该技术特别适用于多载波信号格式,从而导致接收器结构也合并了通道间干扰(ICI)消除。为了降低算法的计算复杂度,采用带限,离散余弦正交基函数通过离散余弦序列展开系数来表示快速时变衰落信道。结果表明,取决于归一化的多普勒频率,仅少量的扩展系数就足以完美地逼近该信道,并且无需知道输入信号的相关函数。以这种方式,估计得到的减小的尺寸信道系数,并且以易处理的复杂度迭代地检测数据符号。提出的SAGE联合检测算法可串行更新数据序列,并并行更新信道参数,从而形成还包含ICI消除功能的接收器结构。计算机仿真表明,余弦变换非常有效地表示时变信道,并且即使算法中使用的信道扩展系数非常小,该算法仍具有出色的符号错误率和信道估计性能,从而大大减少了计算量。复杂。

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