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信源数量估计的可视化线性聚类方法
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作者 何选森 何帆 +1 位作者 孟凡臣 徐丽 《高技术通讯》 CAS 2021年第12期1261-1268,共8页
在通过传感器采集信源获得观测数据的过程中,估计信源的数量对源信号处理和观测数据分析起着非常重要的作用。为了确定稀疏信源的数量,本文提出了增强信号线性聚类特性的可视化估计方法。首先,利用短时傅里叶变换(STFT)把时域的观测信... 在通过传感器采集信源获得观测数据的过程中,估计信源的数量对源信号处理和观测数据分析起着非常重要的作用。为了确定稀疏信源的数量,本文提出了增强信号线性聚类特性的可视化估计方法。首先,利用短时傅里叶变换(STFT)把时域的观测信号变换成频域中的复频谱以增强观测数据的稀疏性;然后,建立一种角度余弦的相似性测度,以频谱实部分量与虚部分量之间的角度阈值来判别数据点所归属的信源;最后,把该角度阈值应用于单源点(SSP)检测中,剔除造成干扰的多源点(MSP)数据,凸显稀疏信源的线性聚类特性。实验结果表明,本文方法可以有效地增强数据的线性聚类特性,实现对信源数量直观地估计。 展开更多
关键词 稀疏信源 线性聚类 角度阈值 点(SSP)检测
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Underdetermined Blind Source Separation of Adjacent Satellite Interference Based on Sparseness 被引量:10
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作者 Chengjie Li Lidong Zhu Zhongqiang Luo 《China Communications》 SCIE CSCD 2017年第4期140-149,共10页
The problem of underdetermined blind source separation of adjacent satellite interference is proposed in this paper. Density Clustering algorithm(DC-algorithm) presented in this article is different from traditional m... The problem of underdetermined blind source separation of adjacent satellite interference is proposed in this paper. Density Clustering algorithm(DC-algorithm) presented in this article is different from traditional methods. Sparseness representation has been applied in underdetermined blind signal source separation. However, some difficulties have not been considered, such as the number of sources is unknown or the mixed matrix is ill-conditioned. In order to find out the number of the mixed signals, Short Time Fourier Transform(STFT) is employed to segment received mixtures. Then, we formulate the blind source signal as cluster problem. Furthermore, we construct Cost Function Pair and Decision Coordinate System by using density clustering. At the end of this paper, we discuss the performance of the proposed method and verify the novel method based on several simulations. We verify the proposed method on numerical experiments with real signal transmission, which demonstrates the validity of the proposed method. 展开更多
关键词 adjacent satellite interference Short Time Fourier Transform Decision Coordinate System real signal transmission
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