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首页> 外文期刊>Wireless personal communications: An Internaional Journal >Reduced Rank Technique for Joint Channel Estimation and Joint Data Detection in TD-SCDMA Systems
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Reduced Rank Technique for Joint Channel Estimation and Joint Data Detection in TD-SCDMA Systems

机译:TD-SCDMA系统中联合信道估计和联合数据检测的降秩技术

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摘要

In time division-synchronous code division multiple access systems, the channel estimation for multiple subscribers requires the computation of very complicated algorithms through short training sequences. This situation causes mismodeling of the actual channels and introduces significant errors in the detected data of multiple users. This paper presents a novel channel estimation method with low complexity, which relies on reducing the rank order of the total channel matrix H. We exploit the rank deficient of H to reduce the number of parameters that characterizes this matrix. The adopted reduced rank technique is based on singular value decomposition algorithm. Equations for reduced rank-joint channel estimation (JCE) are derived and compared against traditional full rank-joint channel estimators: least square (LS) or Steiner, enhanced LS, and minimum mean square error algorithms. Simulation results of the normalized mean square error for the above mentioned estimators showed the superiority of reduced rank estimators. Multi-user joint data detectors based linear equalizers are used to suppress inter-symbol interference and mitigate intra-cell multiple access interference. The detectors: zero forcing block linear equalizer and minimum mean square error block linear equalizer algorithms are considered in this paper to recover the data. The results of bit error rate simulation have shown that reduced rank-JCE based detectors have an improvement by 5 dB lower than other traditional full rank-JCE based detectors.
机译:在时分同步码分多址系统中,用于多个用户的信道估计需要通过短训练序列来计算非常复杂的算法。这种情况导致实际通道的模型错误,并在多个用户的检测数据中引入了重大错误。本文提出了一种低复杂度的新颖信道估计方法,该方法依靠降低总信道矩阵H的秩排序。我们利用H的秩不足来减少表征该矩阵的参数数量。所采用的降秩技术基于奇异值分解算法。推导了用于减少秩联合信道估计(JCE)的公式,并将其与传统的完整秩联合信道估计器进行比较:最小二乘(LS)或Steiner,增强型LS和最小均方误差算法。上述估计量的归一化均方误差的仿真结果显示了降秩估计量的优越性。基于线性均衡器的多用户联合数据检测器用于抑制符号间干扰并减轻小区内多址干扰。本文采用检测器:零强迫块线性均衡器和最小均方误差块线性均衡器算法来恢复数据。比特误码率仿真的结果表明,与其他传统的基于满秩JCE的检测器相比,基于降低秩JCE的检测器的性能提高了5 dB。

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