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Statistical sampling based equalization algorithms for fading channels and multiuser detection

机译:基于统计采样的衰落信道和多用户检测均衡算法

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In this paper, novel statistical sampling based equalization techniques are proposed to increase the spectral efficiency of multiuser communication systems over fading channels. Multiuser communication combined with selective fading can result in interferences which severely deteriorate the quality of service in wireless data transmission (e.g. CDMA in mobile communication). The paper introduces new equalization methods to combat interferences by minimizing the Bit Error Rate (BER) as a function of the equalizer coefficients. This provides higher performance than the traditional Minimum Mean Square Error equalization. Since the calculation of BER as a function of the equalizer coefficients is of exponential complexity, statistical sampling methods are proposed to approximate the gradient which yields fast equalization and superior performance to the traditional algorithms. Efficient estimation of the gradient is achieved by using stratified sampling and the Li-Silvester bounds. A simple mechanism is derived to identify the dominant samples in realtime, for the sake of efficient estimation. The equalizer weights are adapted recursively by minimizing the estimated BER. The near-optimal performance of the new algorithms is also demonstrated by extensive simulations.
机译:本文提出了一种新颖的基于统计采样的均衡技术,以提高衰落信道上多用户通信系统的频谱效率。多用户通信与选择性衰落相结合会导致干扰,从而严重恶化无线数据传输(例如,移动通信中的CDMA)的服务质量。本文介绍了一种新的均衡方法,可通过最小化作为均衡器系数函数的误码率(BER)来抗干扰。与传统的最小均方误差均衡相比,这提供了更高的性能。由于作为均衡器系数函数的BER计算具有指数复杂性,因此提出了统计采样方法来近似梯度,从而产生了快速均衡和优于传统算法的性能。通过使用分层采样和Li-Silvester界限,可以有效地估计梯度。为了有效估计,导出了一种简单的机制来实时识别主要样本。通过使估计的BER最小来递归地调整均衡器权重。广泛的仿真也证明了新算法的最佳性能。

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