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Subspace-based blind adaptive multiuser detection using Kalman filter

机译:基于卡尔曼滤波的基于子空间的盲自适应多用户检测

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摘要

A new blind adaptive multiuser detection scheme based on a hybrid of Kalman filter and subspace estimation is proposed. It is shown that the detector can be expressed as an anchored signal in the signal subspace and the coefficients can be estimated by the Kalman filter using only the signature waveform and the timing of the desired user. The resulting subspace-based algorithm brings the benefit of lower computational complexity than the full-rank approach, and the theoretical analysis indicates that the proposed algorithm is also superior in convergence performance. The adaptive implementation in a dynamic environment such as a variable number of users is obtained by seamlessly integrating a subspace tracking algorithm. The new subspace-based method is effective in AWGN channels as well as in slowly time-varying Rayleigh fading channels. Moreover, the proposed detector is much more robust against the signalling waveform mismatch and inaccurate knowledge of the amplitude of the desired signal than the full-rank one, as demonstrated by computer simulations.
机译:提出了一种基于卡尔曼滤波和子空间估计混合的盲自适应多用户检测方案。示出了可以将检测器表示为信号子空间中的锚定信号,并且可以通过卡尔曼滤波器仅使用签名波形和期望用户的定时来估计系数。由此产生的基于子空间的算法带来的好处是比全秩算法具有更低的计算复杂度,并且理论分析表明该算法在收敛性能上也很优越。通过无缝集成子空间跟踪算法,可以在动态环境(例如,数量可变的用户)中实现自适应实现。新的基于子空间的方法在AWGN信道以及缓慢时变瑞利衰落信道中均有效。而且,如计算机模拟所证明的,所提出的检测器比全秩检测器更能抵抗信令波形失配和对所需信号幅度的不正确了解。

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