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Fast and Robust Modulation Classification via Kolmogorov-Smirnov Test

机译:通过Kolmogorov-Smirnov测试进行快速和鲁棒的调制分类

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label{sec_abs} A new approach to modulation classification based on the Kolmogorov-Smirnov (K-S) test is proposed. The K-S test is a non-parametric method to measure the goodness of fit. The basic procedure involves computing the empirical cumulative distribution function (ECDF) of some decision statistic derived from the received signal, and comparing it with the CDFs or the ECDFs of the signal under each candidate modulation format. The K-S-based modulation classifiers are developed for various channels, including the AWGN channel, the flat-fading channel, the OFDM channel, and the channel with unknown phase and frequency offsets, as well as the non-Gaussian noise channel, for both QAM and PSK modulations. Extensive simulation results demonstrate that compared with the traditional cumulant-based classifiers, the proposed K-S classifiers offer superior classification performance, require less number of signal samples (thus is fast), and is more robust to various channel impairments.
机译:label {sec_abs}提出了一种基于Kolmogorov-Smirnov(K-S)测试的调制分类新方法。 K-S检验是一种非参数方法,用于测量拟合优度。基本过程包括计算从接收信号中得出的某些决策统计量的经验累积分布函数(ECDF),并将其与每种候选调制格式下信号的CDF或ECDF进行比较。基于KS的调制分类器适用于各种信道,包括QAM和QAM的AWGN信道,平坦衰落信道,OFDM信道,具有未知相位和频率偏移的信道以及非高斯噪声信道。和PSK调制。大量的仿真结果表明,与传统的基于累积量的分类器相比,所提出的K-S分类器具有出色的分类性能,需要的信号样本数量更少(因此速度很快),并且对各种信道损伤具有更强的鲁棒性。

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