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Adaptive Bayesian multiuser detection for synchronous CDMA with Gaussian and impulsive noise

机译:具有高斯和脉冲噪声的同步CDMA的自适应贝叶斯多用户检测

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We consider the problem of simultaneous parameter estimation and data restoration in a synchronous CDMA system in the presence of either additive Gaussian or additive impulsive white noise with unknown parameters. The impulsive noise is modeled by a two-term Gaussian mixture distribution. Bayesian inference of all unknown quantities is made from the superimposed and noisy received signals. The Gibbs sampler (a Markov chain Monte Carlo procedure) is employed to calculate the Bayesian estimates. The basic idea is to generate ergodic random samples from the joint posterior distribution of all unknown and then to average the appropriate samples to obtain the estimates of the unknown quantities. Adaptive Bayesian multiuser detectors based on the Gibbs sampler are derived for both the Gaussian noise synchronous CDMA channel and the impulsive noise synchronous CDMA channel. A salient feature of the proposed adaptive Bayesian multiuser detectors is that they can incorporate the a priori symbol probabilities, and they produce as output the a posteriori symbol probabilities. (That is, they are "soft-input soft-output" algorithms.) Hence, these methods are well suited for iterative processing in a coded system, which allows the adaptive Bayesian multiuser detector to refine its processing based on the information from the decoding stage, and vice versa-a receiver structure termed the adaptive turbo multiuser detector.
机译:我们考虑到在存在具有未知参数的加性高斯或加性脉冲白噪声的情况下,同步CDMA系统中同时进行参数估计和数据恢复的问题。脉冲噪声是通过两项高斯混合分布来建模的。所有未知量的贝叶斯推论是从叠加的和有噪声的接收信号中得出的。使用吉布斯采样器(马尔可夫链蒙特卡洛过程)来计算贝叶斯估计。基本思想是从所有未知量的联合后验分布中生成遍历遍历的随机样本,然后对适当的样本求平均,以获得未知量的估计值。针对高斯噪声同步CDMA信道和脉冲噪声同步CDMA信道,导出了基于Gibbs采样器的自适应贝叶斯多用户检测器。所提出的自适应贝叶斯多用户检测器的显着特征是它们可以合并先验符号概率,并且它们产生后验符号概率作为输出。 (也就是说,它们是“软输入软输出”算法。)因此,这些方法非常适合在编码系统中进行迭代处理,从而允许自适应贝叶斯多用户检测器根据来自解码的信息来完善其处理。阶段,反之亦然-一种称为自适应Turbo多用户检测器的接收器结构。

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