Joint active users’ identification and multiuser detection in cell DS-CDMA system

Chen Lianghui, Huang Hanying
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引用次数: 1

Abstract

In this paper, the problem of joint Bayesian active users' identification and multiuser detection in an uncoded cell DS-CDMA system with unknown colored noise is considered. The number of active users follows the Poisson distribution and the observation vectors are considered as the compound Poisson process vitiated by the colored noise. According to the actual condition of users' calling and being called in cells, it defines five kinds of active users' state parameter space movements. We show the conditional posterior probability density function and the equation of conditional posterior likelihood ratio of multiuser detector by introducing subspace algorithm and Bayesian inference. Two-layer nesting iteration Markov Chain Monte Carlo (MCMC) method of Reversible Jump MCMC (RJMCMC) and Gibbs Sampler is used parameters estimation and multiuser detection jointly. Simulation results support the effectiveness of nesting iteration methods.
小区DS-CDMA系统中联合活跃用户识别与多用户检测
研究了带未知彩色噪声的无编码小区DS-CDMA系统中活跃用户的联合贝叶斯识别和多用户检测问题。活跃用户数服从泊松分布,观测向量被彩色噪声破坏为复合泊松过程。根据用户在cell中调用和被调用的实际情况,定义了五种活动用户的状态参数空间运动。通过引入子空间算法和贝叶斯推理,给出了多用户检测器的条件后验概率密度函数和条件后验似然比方程。采用可逆跳跃马尔可夫链蒙特卡罗(RJMCMC)和吉布斯采样器相结合的两层嵌套迭代马尔可夫链蒙特卡罗(MCMC)方法进行参数估计和多用户检测。仿真结果支持了嵌套迭代方法的有效性。
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