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首页> 外文期刊>IEEE Transactions on Signal Processing >Unbiased blind adaptive channel identification and equalization
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Unbiased blind adaptive channel identification and equalization

机译:无偏盲自适应信道识别与均衡

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摘要

The blind adaptive equalization and identification of communication channels is a problem of important current theoretical and practical concerns. Previously proposed solutions for this problem exploit the diversity induced by sensor arrays or time oversampling, leading to the so-called second-order algebraic/statistical techniques. The prediction error method is one of them, perhaps the most appealing in practice, due to its inherent robustness to ill-defined channel lengths as well as for its simple adaptive implementation. Unfortunately, the performance of prediction error methods is known to be severely limited in noisy environments, which calls for the development of noise (bias) removal techniques. We present a low-cost algorithm that solves this problem and allows the adaptive estimation of unbiased linear predictors in additive noise with arbitrary autocorrelation. This algorithm does not require the knowledge of the noise variance and relies on a new constrained prediction cost function. The technique can be applied in other noisy prediction problems. Global convergence is established analytically. The performance of the denoising technique is evaluated over GSM test channels.
机译:通信信道的盲自适应均衡和识别是当前重要的理论和实践问题。先前针对该问题提出的解决方案利用了由传感器阵列或时间过采样引起的多样性,从而导致了所谓的二阶代数/统计技术。预测误差方法是其中之一,在实践中可能是最吸引人的,这是由于其固有的对不确定的信道长度的鲁棒性以及其简单的自适应实现。不幸的是,众所周知,在嘈杂的环境中,预测误差方法的性能受到严重限制,这要求开发噪声(偏置)消除技术。我们提出了一种低成本算法,可以解决此问题,并允许以任意自相关来自适应估计附加噪声中的无偏线性预测变量。该算法不需要了解噪声方差,而是依赖于新的约束预测成本函数。该技术可以应用于其他噪声预测问题。通过分析建立全球趋同。去噪技术的性能通过GSM测试通道进行评估。

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