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Subspace-Based Blind Channel Estimation by Separating Real and Imaginary Symbols for Cyclic-Prefixed Single-Carrier Systems

机译:通过分离实数和虚数符号的循环前缀单载波系统基于子空间的盲信道估计

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Blind channel estimation based on a subspace-based algorithm for single-input single-output cyclic-prefixed single-carrier systems is proposed in this brief. The proposed method is different from conventional subspace-based approaches, which exploit the original complex structure of the received data symbols. In contrast, we separate the real part and the imaginary part of the received complex symbols and then exploit these two kinds of symbols to construct the signal model. The noise subspace can then be established to estimate the channel impulse response (CIR) using a subspace algorithm when real symbols, such as binary phase shift keying or pulse amplitude modulation symbols, are applied. The real part and the imaginary part of the CIR can be estimated individually and simultaneously with only a sign ambiguity. With the aid of repetition index, the proposed method is workable even if few data blocks are available. Simulation results demonstrate that the proposed approach outperforms conventional methods in normalized mean-squared error under static channel environments.
机译:提出了基于子空间算法的单输入单输出循环前缀单载波系统盲信道估计。所提出的方法不同于传统的基于子空间的方法,后者利用了接收数据符号的原始复杂结构。相反,我们将接收到的复符号的实部和虚部分开,然后利用这两种符号来构建信号模型。然后,当应用诸如二进制相移键控或脉冲幅度调制符号之类的实际符号时,可以使用子空间算法建立噪声子空间以估计信道脉冲响应(CIR)。 CIR的实部和虚部都可以单独估计,同时也只有符号模糊不清。借助于重复索引,即使可用的数据块很少,所提出的方法也是可行的。仿真结果表明,在静态信道环境下,该方法在归一化均方误差方面优于传统方法。

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