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Adaptive OFDM Synchronization Algorithms Based on Discrete Stochastic Approximation

机译:基于离散随机逼近的自适应OFDM同步算法

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摘要

This paper presents discrete stochastic approximation algorithms (DSA) for time synchronization in orthogonal frequency division multiplexing (OFDM) systems. It is shown that the discrete stochastic approximation algorithms can be effectively used to achieve a significant reduction in computational complexity compared to brute force maximum-likelihood (ML) methods for OFDM synchronization. The most important property of the proposed algorithms is their recursive self-learning capability—most of the computational effort is spent at the global or a local optimizer of the objective function. The convergence of the algorithms is analyzed. An adaptive version of the discrete stochastic approximation algorithm is also presented for tracking time-varying time delays and frequency offsets in time-selective fading channels. Detailed numerical examples illustrate the performance gains of these DSA-based synchronization algorithms.
机译:本文提出了用于正交频分复用(OFDM)系统中时间同步的离散随机逼近算法(DSA)。结果表明,与用于OFDM同步的蛮力最大似然(ML)方法相比,离散随机逼近算法可有效地实现计算复杂度的显着降低。所提出算法的最重要属性是它们的递归自学习能力-大多数计算工作都花费在目标函数的全局或局部优化器上。分析了算法的收敛性。还提出了一种自适应版本的离散随机逼近算法,用于跟踪时间选择衰落信道中的时变时延和频率偏移。详细的数字示例说明了这些基于DSA的同步算法的性能提升。

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