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Spreading sequence estimation algorithms based on ML detector in DSSS communication systems

机译:DSSS通信系统中基于ML检测器的扩频序列估计算法

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摘要

In this study, the authors address the spreading sequence estimation in direct-sequence spread-spectrum signals. At first, the maximum-likelihood (ML) estimator is derived. In order to alleviate the greater computational complexity of the ML estimator, an innovative algorithm based on the ML method is proposed. The authors' proposed algorithm uses an initial estimation with low complexity and low estimation accuracy as a result. In the second step, the estimation accuracy increases using the ML decision rule. They analyse their proposed algorithm and they derive an analytical approximation for the error probability of the proposed suboptimal algorithm. Simulation and analytical results show great performance and acceptable complexity of the proposed method.
机译:在这项研究中,作者研究了直接序列扩频信号中的扩频序列估计。首先,得出最大似然(ML)估计量。为了减轻ML估计器的计算复杂度,提出了一种基于ML方法的创新算法。作者提出的算法使用的初始估计具有较低的复杂度和较低的估计精度。在第二步中,使用ML决策规则提高估计精度。他们分析了所提出的算法,并得出了所提出次优算法的错误概率的解析近似。仿真和分析结果表明,该方法具有很好的性能和可接受的复杂度。

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