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首页> 外文期刊>IEEE Journal on Selected Areas in Communications >A stochastic importance sampling methodology for the efficient simulation of adaptive systems in frequency nonselective Rayleigh fading channels
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A stochastic importance sampling methodology for the efficient simulation of adaptive systems in frequency nonselective Rayleigh fading channels

机译:随机重要性抽样方法,用于频率非选择性瑞利衰落信道中自适应系统的有效仿真

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摘要

We present an IS stochastic technique for the efficient simulation of adaptive systems which employ diversity in the presence of frequency nonselective slow Rayleigh fading and additive, white, Gaussian noise. The computational efficiency is achieved using techniques based on importance sampling (IS). We utilize a stochastic gradient descent (SGD) algorithm to determine the near-optimal IS parameters that characterize the dominant fading process. After accounting for the overhead of the optimization algorithm, average speed-up factors of up to six orders of magnitude [over conventional Monte Carlo (MC)] were attained for error probabilities as low as 10/sup -11/ for a fourth-order diversity model.
机译:我们提出了一种IS随机技术,用于对自适应系统进行有效仿真,该自适应系统在存在频率非选择性慢瑞利衰落和加性高斯白噪声的情况下采用分集。使用基于重要性采样(IS)的技术可以实现计算效率。我们利用随机梯度下降(SGD)算法来确定表征主导衰落过程的近最佳IS参数。在考虑了优化算法的开销之后,对于四阶错误概率低至10 / sup -11 /的情况,平均加速因子达到了六个数量级(相对于传统的Monte Carlo(MC))。多样性模型。

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