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首页> 外文期刊>Wireless personal communications: An Internaional Journal >Soft Decoding Assisted SNR Estimation Under Block Fading Channels for Orthogonal Modulations
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Soft Decoding Assisted SNR Estimation Under Block Fading Channels for Orthogonal Modulations

机译:正交调制的块衰落信道下的软解码辅助SNR估计

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摘要

The performance of the coded orthogonal modulation (OM) system under slow fading channels heavily depends on the estimation of the signal-to-noise ratio (SNR), including the fading amplitude and the noise spectral density. However, a relatively long packet of pilot symbols is often required to guarantee the accuracy of the SNR estimation, which makes it impractical in some situations. To address this problem, this paper proposes an iterative SNR estimation algorithm using the soft decoding information based on the expectation-maximization algorithm. In the proposed method, a joint iterative loop between the SNR estimator and decoder is performed, where the extrinsic information generated by the soft decoder is employed to enhance the estimation accuracy and the SNR estimated by the estimator is used to generate the soft information to the decoder. Also, no pilot symbols are needed to estimate the SNR in the proposed estimator. The Cramer-Rao lower bound (CRLB) of fully data-aided (FDA) estimation is derived to works as the final benchmark. The performance of the proposed algorithm is evaluated in terms of the normalized mean square errors (NMSEs) and the bit error rates (BERs) under block fading channels. Simulation results indicate that the NMSE of the proposed estimator reaches the CRLB of the FDA estimator and outperforms that of the approximate ML (ML-A) estimator proposed by Hassan et al. by 4.1 dB. The BER performance of coded OM system with the proposed estimation algorithm is close to the ideal case where the channel fading and the noise spectral density are known at the receiver.
机译:慢衰落信道下的编码正交调制(OM)系统的性能在很大程度上取决于对信噪比(SNR)的估计,包括衰落幅度和噪声频谱密度。然而,通常需要相对长的导频符号分组来保证SNR估计的准确性,这使得在某些情况下不切实际。为了解决这个问题,本文提出了一种基于期望最大化算法的基于软解码信息的迭代信噪比估计算法。在提出的方法中,执行SNR估计器和解码器之间的联合迭代循环,其中使用软解码器生成的外在信息来提高估计精度,并使用估计器估计的SNR生成软信息给接收器。解码器。而且,在所提出的估计器中不需要导频符号来估计SNR。完全数据辅助(FDA)估算的Cramer-Rao下限(CRLB)可以作为最终基准。根据归一化均方误差(NMSE)和块衰落信道下的误码率(BER)评估所提出算法的性能。仿真结果表明,拟议估计量的NMSE达到FDA估计量的CRLB,优于Hassan等人提出的近似ML(ML-A)估计量。降低4.1 dB。使用所提出的估计算法的编码OM系统的BER性能接近于理想的情况,在这种情况下,接收器的信道衰落和噪声频谱密度是已知的。

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