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Automatic Digital Modulation Recognition Based on Locality Preserved Projection

机译:基于局部保留投影的数字调制自动识别

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In this paper, we investigate the modulation recognition method based on locality preserved projection (LPP) in AWGN channels. Feature extraction is the precondition of signal modulation recognition. Based on analyzing the characteristic of signal in time and frequency domain, seven feature parameters with fine classification information are selected. In order to wipe off the relativity among different features, and keep the important identity for classification simultaneously, we need to search for a best feature subspace in which different modulation can be apart very well. LPP builds a graph incorporating neighborhood information of the data set to preserve the local structure, it is likely that a nearest neighbor search in the subspace will yield similar results to that in the original feature space. Combined with 1-NN Nearest-neighbor pattern classifier, our method achieves better performance compared with the method based on PCA which is widely used.
机译:在本文中,我们研究了基于AWGN信道中的局部保留投影(LPP)的调制识别方法。特征提取是信号调制识别的前提。在分析信号时域和频域特性的基础上,选择了具有良好分类信息的七个特征参数。为了消除不同特征之间的相对性,并同时保持分类的重要意义,我们需要寻找一个最佳特征子空间,在该空间中可以很好地分离不同的调制。 LPP建立了一个包含数据集的邻域信息的图,以保留局部结构,子空间中的最近邻居搜索可能会产生与原始特征空间中相似的结果。与广泛使用的基于PCA的方法相结合,结合1-NN最近邻模式分类器,我们的方法具有更好的性能。

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