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Jamming suppression by blind source separation:from a perspective of spatial band-pass filters
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作者 LIU Quanhua SUI Xinran +2 位作者 CHEN Xinliang LIANG Zhennan ZHU Rui 《Journal of Systems Engineering and Electronics》 2025年第5期1169-1176,共8页
Jamming suppression is traditionally achieved through the use of spatial filters based on array signal processing theory.In order to achieve better jamming suppression performance,many studies have applied blind sourc... Jamming suppression is traditionally achieved through the use of spatial filters based on array signal processing theory.In order to achieve better jamming suppression performance,many studies have applied blind source separation(BSS)to jamming suppression.BSS can achieve the separation and extraction of the individual source signals from the mixed signal received by the array.This paper proposes a perspective to recognize BSS as spatial band-pass filters(SBPFs)for jamming suppression applications.The theoretical derivation indicates that the processing of mixed signals by BSS can be perceived as the application of a set of SBPFs that gate the source signals at various angles.Simulations are performed using radar jamming suppression as an example.The simulation results suggest that BSS and SBPFs produce approximately the same effects.Simulation results are consistent with theoretical derivation results. 展开更多
关键词 blind source separation(bss) jamming suppression spatial filtering
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Blind source separation of ship-radiated noise based on generalized Gaussian model 被引量:2
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作者 Kong Wei Yang Bin 《Journal of Systems Engineering and Electronics》 SCIE EI CSCD 2006年第2期321-325,共5页
When the distribution of the sources cannot be estimated accurately, the ICA algorithms failed to separate the mixtures blindly. The generalized Gaussian model (GGM) is presented in ICA algorithm since it can model ... When the distribution of the sources cannot be estimated accurately, the ICA algorithms failed to separate the mixtures blindly. The generalized Gaussian model (GGM) is presented in ICA algorithm since it can model non- Ganssian statistical structure of different source signals easily. By inferring only one parameter, a wide class of statistical distributions can be characterized. By using maximum likelihood (ML) approach and natural gradient descent, the learning rules of blind source separation (BSS) based on GGM are presented. The experiment of the ship-radiated noise demonstrates that the GGM can model the distributions of the ship-radiated noise and sea noise efficiently, and the learning rules based on GGM gives more successful separation results after comparing it with several conventional methods such as high order cumnlants and Gaussian mixture density function. 展开更多
关键词 blind source separation (bss independent component analysis (ICA) generalized Gaussian model(GGM) maximum likelihood (ML).
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Application of particle swarm optimization blind source separation technology in fault diagnosis of gearbox 被引量:5
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作者 黄晋英 潘宏侠 +1 位作者 毕世华 杨喜旺 《Journal of Central South University》 SCIE EI CAS 2008年第S2期409-415,共7页
Blind source separation (BBS) technology was applied to vibration signal processing of gearbox for separating different fault vibration sources and enhancing fault information. An improved BSS algorithm based on parti... Blind source separation (BBS) technology was applied to vibration signal processing of gearbox for separating different fault vibration sources and enhancing fault information. An improved BSS algorithm based on particle swarm optimization (PSO) was proposed. It can change the traditional fault-enhancing thought based on de-noising. And it can also solve the practical difficult problem of fault location and low fault diagnosis rate in early stage. It was applied to the vibration signal of gearbox under three working states. The result proves that the BSS greatly enhances fault information and supplies technological method for diagnosis of weak fault. 展开更多
关键词 PSO blind source separation FAULT diagnosis FAULT information enhancement GEARBOX
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Blind source separation by weighted K-means clustering 被引量:5
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作者 Yi Qingming 《Journal of Systems Engineering and Electronics》 SCIE EI CSCD 2008年第5期882-887,共6页
Blind separation of sparse sources (BSSS) is discussed. The BSSS method based on the conventional K-means clustering is very fast and is also easy to implement. However, the accuracy of this method is generally not ... Blind separation of sparse sources (BSSS) is discussed. The BSSS method based on the conventional K-means clustering is very fast and is also easy to implement. However, the accuracy of this method is generally not satisfactory. The contribution of the vector x(t) with different modules is theoretically proved to be unequal, and a weighted K-means clustering method is proposed on this grounds. The proposed algorithm is not only as fast as the conventional K-means clustering method, but can also achieve considerably accurate results, which is demonstrated by numerical experiments. 展开更多
关键词 blind source separation underdetermined mixing sparse representation weighted K-means clustering.
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Underdetermined DOA estimation and blind separation of non-disjoint sources in time-frequency domain based on sparse representation method 被引量:9
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作者 Xiang Wang Zhitao Huang Yiyu Zhou 《Journal of Systems Engineering and Electronics》 SCIE EI CSCD 2014年第1期17-25,共9页
This paper deals with the blind separation of nonstation-ary sources and direction-of-arrival (DOA) estimation in the under-determined case, when there are more sources than sensors. We assume the sources to be time... This paper deals with the blind separation of nonstation-ary sources and direction-of-arrival (DOA) estimation in the under-determined case, when there are more sources than sensors. We assume the sources to be time-frequency (TF) disjoint to a certain extent. In particular, the number of sources presented at any TF neighborhood is strictly less than that of sensors. We can identify the real number of active sources and achieve separation in any TF neighborhood by the sparse representation method. Compared with the subspace-based algorithm under the same sparseness assumption, which suffers from the extra noise effect since it can-not estimate the true number of active sources, the proposed algorithm can estimate the number of active sources and their cor-responding TF values in any TF neighborhood simultaneously. An-other contribution of this paper is a new estimation procedure for the DOA of sources in the underdetermined case, which combines the TF sparseness of sources and the clustering technique. Sim-ulation results demonstrate the validity and high performance of the proposed algorithm in both blind source separation (BSS) and DOA estimation. 展开更多
关键词 underdetermined blind source separation (Ubss)time-frequency (TF) domain sparse representation methoditerative adaptive approach direction-of-arrival (DOA) estimationclustering validation.
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Online blind source separation based on joint diagonalization 被引量:2
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作者 Li Ronghua Zhou Guoxu Yang Zuyuan Xie Shengli 《Journal of Systems Engineering and Electronics》 SCIE EI CSCD 2009年第2期229-233,共5页
A new algorithm is proposed for joint diagonalization. With a modified objective function, the new algorithm not only excludes trivial and unbalanced solutions successfully, but is also easily optimized. In addition, ... A new algorithm is proposed for joint diagonalization. With a modified objective function, the new algorithm not only excludes trivial and unbalanced solutions successfully, but is also easily optimized. In addition, with the new objective function, the proposed algorithm can work well in online blind source separation (BSS) for the first time, although this family of algorithms is always thought to be valid only in batch-mode BSS by far. Simulations show that it is a very competitive joint diagonalization algorithm. 展开更多
关键词 blind source separation joint diagonalization nonconvex optimization
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Algorithm for source recovery in underdetermined blind source separation based on plane pursuit 被引量:1
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作者 FU Weihong WEI Juan +1 位作者 LIU Naian CHEN Jiehu 《Journal of Systems Engineering and Electronics》 SCIE EI CSCD 2018年第2期223-228,共6页
In order to achieve accurate recovery signals under the underdetermined circumstance in a comparatively short time,an algorithm based on plane pursuit(PP) is proposed. The proposed algorithm selects the atoms accordin... In order to achieve accurate recovery signals under the underdetermined circumstance in a comparatively short time,an algorithm based on plane pursuit(PP) is proposed. The proposed algorithm selects the atoms according to the correlation between received signals and hyper planes, which are composed by column vectors of the mixing matrix, and uses these atoms to recover source signals. Simulation results demonstrate that the PP algorithm has low complexity and higher accuracy as compared with basic pursuit(BP), orthogonal matching pursuit(OMP), and adaptive sparsity matching pursuit(ASMP) algorithms. 展开更多
关键词 underdetermined blind source separation(Ubss) source recovery greedy algorithm plane pursuit
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On-line blind source separation algorithm based on second order statistics 被引量:1
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作者 何文雪 谢剑英 杨煜普 《Journal of Systems Engineering and Electronics》 SCIE EI CSCD 2005年第3期692-696,共5页
An on-line blind source separation (BSS) algorithm is presented in this paper under the assumption that sources are temporarily correlated signals. By using only some of the observed samples in a recursive calculati... An on-line blind source separation (BSS) algorithm is presented in this paper under the assumption that sources are temporarily correlated signals. By using only some of the observed samples in a recursive calculation, the whitening matrix and the rotation matrix could be approximately obtained through the measurement of only one cost function. SimNations show goad performance of the algorithm. 展开更多
关键词 blind source separation second order statistics cost function.
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Blind radar signal separation algorithm based on third-order degree of cyclostationarity criteria
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作者 FAN Xiangyu LIU Bin +2 位作者 DONG Danna CHEN You WANG Yuancheng 《Journal of Systems Engineering and Electronics》 CSCD 2024年第6期1441-1453,共13页
Separation and recognition of radar signals is the key function of modern radar reconnaissance,which is of great sig-nificance for electronic countermeasures and anti-countermea-sures.In order to improve the ability o... Separation and recognition of radar signals is the key function of modern radar reconnaissance,which is of great sig-nificance for electronic countermeasures and anti-countermea-sures.In order to improve the ability of separating mixed signals in complex electromagnetic environment,a blind source separa-tion algorithm based on degree of cyclostationarity(DCS)crite-rion is constructed in this paper.Firstly,the DCS criterion is con-structed by using the cyclic spectrum theory.Then the algo-rithm flow of blind source separation is designed based on DCS criterion.At the same time,Givens matrix is constructed to make the blind source separation algorithm suitable for multiple sig-nals with different cyclostationary frequencies.The feasibility of this method is further proved.The theoretical and simulation results show that the algorithm can effectively separate and re-cognize common multi-radar signals. 展开更多
关键词 blind signal separation cyclostationary frequency Givens matrix degree of cyclostationarity(DCS)blind source separation algorithm
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A Blind Separation Approach of Low Order Cyclostationary Signals
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作者 Wang Zhiyang Chen Jin Du Wenliao 《仪器仪表学报》 EI CAS CSCD 北大核心 2013年第S1期159-164,共6页
This paper presents a new blind separation approach of the low order cyclostationary signals based on the cyclic periodicity of the cyclostationary signal.The goal of the method is extracting the hidden periodicity an... This paper presents a new blind separation approach of the low order cyclostationary signals based on the cyclic periodicity of the cyclostationary signal.The goal of the method is extracting the hidden periodicity and reducing the randomicity of cyclostationary signal and it is particularly applicable to the separation of low order cyclostationary signals.The method also demonstrates the importance of extraction of cyclostationary signals from low order to high order in turn.The effectiveness of the proposed method is finally demonstrated by computer simulation and experiment. 展开更多
关键词 blind source separation CYCLOSTATIONARY CYCLIC AUTOCORRELATION function machine FAULT diagnosis
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UBSS and blind parameters estimation algorithms for synchronous orthogonal FH signals 被引量:12
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作者 Weihong Fu Yongqiang Hei Xiaohui Li 《Journal of Systems Engineering and Electronics》 SCIE EI CSCD 2014年第6期911-920,共10页
By using the sparsity of frequency hopping(FH) signals,an underdetermined blind source separation(UBSS) algorithm is presented. Firstly, the short time Fourier transform(STFT) is performed on the mixed signals. ... By using the sparsity of frequency hopping(FH) signals,an underdetermined blind source separation(UBSS) algorithm is presented. Firstly, the short time Fourier transform(STFT) is performed on the mixed signals. Then, the mixing matrix, hopping frequencies, hopping instants and the hooping rate can be estimated by the K-means clustering algorithm. With the estimated mixing matrix, the directions of arrival(DOA) of source signals can be obtained. Then, the FH signals are sorted and the FH pattern is obtained. Finally, the shortest path algorithm is adopted to recover the time domain signals. Simulation results show that the correlation coefficient between the estimated FH signal and the source signal is above 0.9 when the signal-to-noise ratio(SNR) is higher than 0 d B and hopping parameters of multiple FH signals in the synchronous orthogonal FH network can be accurately estimated and sorted under the underdetermined conditions. 展开更多
关键词 frequency hopping(FH) underdetermined blind source separation(Ubss) parameters estimation CLUSTERING
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基于UBSS算法的电力系统低频振荡辨识方法 被引量:2
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作者 夏远洋 李啸骢 +2 位作者 徐俊华 刘治理 刘源 《中国电机工程学报》 EI CSCD 北大核心 2024年第13期5073-5083,I0005,共12页
低频振荡监测和分析对电力系统故障诊断和电网恢复至关重要。该文提出一种基于欠定盲源分离原理的低频振荡模式辨识方法,包括欠定盲源分离(underdetermined blind source separation,UBSS)和希尔伯特变换(Hilbert transform,HT)。首次... 低频振荡监测和分析对电力系统故障诊断和电网恢复至关重要。该文提出一种基于欠定盲源分离原理的低频振荡模式辨识方法,包括欠定盲源分离(underdetermined blind source separation,UBSS)和希尔伯特变换(Hilbert transform,HT)。首次系统地提出并论证含欠定盲源分离、模式定阶和振荡参数的辨识方法。提出的UBSS-HT方法利用能量比函数确定故障时刻,利用贝叶斯信息准则(Bayesian information criterion,BIC)实现模式定阶,阐述维度空间理论,论证构建虚拟多通道的可行性,通过盲源分离来实现源信号分离,最后通过HT在希尔伯特空间来辨识振荡参数。通过大量的系统建模仿真和现场录波数据试验评估所提方法的性能,验证该方法的有效性、准确性和抗干扰能力。 展开更多
关键词 欠定盲源分离 低频振荡 能量比函数 维度变换 源数估计
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基于单通道盲源分离的风电叶片模态参数识别
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作者 王磊 柳亦兵 +2 位作者 宋磊 程志学 滕伟 《中国工程机械学报》 北大核心 2025年第4期622-627,共6页
对风电叶片进行基于单通道盲源分离的模态参数识别,通过对比损伤前后的模态参数变化,可评估叶片损伤状况。首先,利用优化同步提取变换(OSSET)对振动信号进行时频分析,观察时频图中能量集中频带个数以确定变分模态分解(VMD)参数K的取值... 对风电叶片进行基于单通道盲源分离的模态参数识别,通过对比损伤前后的模态参数变化,可评估叶片损伤状况。首先,利用优化同步提取变换(OSSET)对振动信号进行时频分析,观察时频图中能量集中频带个数以确定变分模态分解(VMD)参数K的取值。其次,用VMD将振动信号分解形成K个本征模态函数(IMF),对分解后的IMF进行线性混合降维,并与源信号混合形成新的观测信号。然后,基于信号稀疏性的源信号分离算法获取各单模态信号。最后,用单模态识别技术进行模态参数识别,为基于运行模态参数分析的风电叶片损伤识别提供应用参考。 展开更多
关键词 风电叶片 损伤 模态参数 盲源分离
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多谱自适应小波和盲源分离耦合的生理信号降噪方法
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作者 王振宇 向泽锐 +2 位作者 支锦亦 丁铁成 邹瑞 《北京航空航天大学学报》 北大核心 2025年第3期910-921,共12页
为提高生理信号的质量和可靠性,将盲源分离和小波阈值方法进行耦合研究,提出了多谱自适应小波信号增强方法并与改进的盲源分离方法相结合进行降噪处理。为评估所提方法的有效性,使用小波变换中软阈值、硬阈值、自适应阈值3种方法计算信... 为提高生理信号的质量和可靠性,将盲源分离和小波阈值方法进行耦合研究,提出了多谱自适应小波信号增强方法并与改进的盲源分离方法相结合进行降噪处理。为评估所提方法的有效性,使用小波变换中软阈值、硬阈值、自适应阈值3种方法计算信噪比(SNR)和均方根误差(RMSE)。结果表明:所提方法在软阈值下具有较强的适用性,增强后的信号软阈值相比硬阈值,SNR提升约44.2%,RMSE下降约28.8%,处理时间减少约1.4%。软阈值相比自适应阈值,SNR提升约706%,RMSE下降约16.7%,处理时间减少约3.0%。为对比软阈值下各参数差异,使用软阈值对原始信号、加噪信号和增强信号进行对比分析及归一化处理。结果显示增强后的信号具有较好的SNR、较低的RMSE和较短的处理时间,软阈值下增强后的信号与原始信号相比,SNR提升约0.12%,RMSE下降约2.5%,处理时间减少约3.9%,进一步验证了所提方法的有效性,并提高了信号质量。 展开更多
关键词 多谱自适应小波 盲源分离 小波变换 降噪方法 生理信号
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基于声阵列与SHO-VMD-FastICA的750kV电抗器声纹分离方法研究及应用
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作者 王果 李宝鹏 +3 位作者 闵永智 何怡刚 贺建山 霍奕辰 《高电压技术》 北大核心 2025年第9期4588-4598,I0013-I0015,共14页
750 kV电抗器实测声纹信号中包含高低频段的干扰噪声,严重影响电抗器声纹识别精度,需要进行电抗器本体声纹分离。首先,采用声阵列采集750 kV电抗器声纹信号,并通过数据一致性检验算法对各阵元进行甄别,筛选有效阵元数据构建观测信号矩阵... 750 kV电抗器实测声纹信号中包含高低频段的干扰噪声,严重影响电抗器声纹识别精度,需要进行电抗器本体声纹分离。首先,采用声阵列采集750 kV电抗器声纹信号,并通过数据一致性检验算法对各阵元进行甄别,筛选有效阵元数据构建观测信号矩阵;然后,利用海马优化算法对变分模态分解算法的分解层数K与惩罚因子α进行寻优,进而根据最优参数组合[K,α]分解观测信号,并选取1 kHz以内的模态分量重构观测信号,实现高频干扰噪声的滤除;最后,采用快速独立成分分析法从多维降噪观测信号中分离出750 kV电抗器本体声纹信号。采用该方法分离所得750 kV电抗器本体声纹信号与对照信号的相似系数为0.954 2,信噪比为10.548 2 dB,与SCA算法相比分别提升6.63%和2.282 7 dB,表明该方法具有更高的适用性和准确性。 展开更多
关键词 750 kV电抗器 声纹分离 声阵列 变分模态分解 盲源分离
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基于K-PSO和StOMP的往复压缩机激振信号盲源分离
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作者 王金东 马智超 +2 位作者 赵海洋 李彦阳 张宇 《机床与液压》 北大核心 2025年第3期228-234,共7页
在当前信号的盲源分离中,传统“两步法”易陷入局部最优解,并且其准确率会随采集信号数的增加或稀疏性的降低而大幅下降。针对上述问题,提出一种结合K均值-粒子群(K-PSO)和分段正交匹配追踪(StOMP)的稀疏分量分析方法。对采集信号执行K... 在当前信号的盲源分离中,传统“两步法”易陷入局部最优解,并且其准确率会随采集信号数的增加或稀疏性的降低而大幅下降。针对上述问题,提出一种结合K均值-粒子群(K-PSO)和分段正交匹配追踪(StOMP)的稀疏分量分析方法。对采集信号执行K均值聚类算法,将产生的结果反馈至PSO聚类中估计混合矩阵。在获得混合矩阵后,将其源信号矩阵转化成列数为1的向量,再通过分段正交匹配追踪算法重构源信号。将实测的往复压缩机正常信号和3种单一故障信号混合成2种复合故障信号,并对复合故障信号进行试验验证。结果表明:在计算时间方面,相较模糊C均值聚类(0.335 s)和K均值聚类(0.299 s),尽管K-PSO聚类方法牺牲了一部分效率(1.561 s),但在总体角度偏差和归一化均方根误差方面表现更优,具有更好的估计精度;相较最短路径法(0.123 s),StOMP算法同样牺牲效率(2.031 s),却获得更佳的相关系数和均方根误差,表现更好的分离重构能力。这说明,该方法在盲源分离中具有可行性和实际应用价值。 展开更多
关键词 往复压缩机 欠定盲源分离 K均值聚类 粒子群算法 分段正交匹配追踪
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频域卷积盲源分离问题下的故障诊断方法探讨
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作者 张明珠 王红尧 《机械设计》 北大核心 2025年第7期164-171,共8页
目前,多采用振动声波信号进行滚动轴承的故障诊断,但在高温、高腐蚀等外界环境影响下,当前同步提取变换(synchroextracting transform,SET)处理强干扰信号分量时,缺乏自适应性而易发生频率模糊,导致频域卷积盲源分离中排序不当和幅度不... 目前,多采用振动声波信号进行滚动轴承的故障诊断,但在高温、高腐蚀等外界环境影响下,当前同步提取变换(synchroextracting transform,SET)处理强干扰信号分量时,缺乏自适应性而易发生频率模糊,导致频域卷积盲源分离中排序不当和幅度不定问题。提出基于残差网络和声波信号递归图的滚动轴承故障诊断方法。采用改进的频域卷积盲源分离方式分离声波信号,同时优化频域卷积盲源分离中排序和幅度不定问题;通过相空间重构转化分离出的声波信号,获得二维递归图;将二维递归图作为深度残差对冲网络的输入,实现滚动轴承故障诊断。试验结果表明:所提方法在滚动轴承声波信号分类中的相关系数最大为0.998,二次残差最大仅为-40.18,ROC曲线更理想,具有实用性。 展开更多
关键词 滚动轴承 残差网络 声波信号递归图 频域卷积盲源分离 故障诊断
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基于多尺度融合神经网络的同频同调制单通道盲源分离算法
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作者 付卫红 张鑫钰 刘乃安 《系统工程与电子技术》 北大核心 2025年第2期641-649,共9页
针对单通道条件下同频同调制混合信号分离时存在的计算复杂度高、分离效果差等问题,提出一种基于时域卷积的多尺度融合递归卷积神经网络(recursive convolutional neural network, RCNN),采用编码、分离、解码结构实现单通道盲源分离。... 针对单通道条件下同频同调制混合信号分离时存在的计算复杂度高、分离效果差等问题,提出一种基于时域卷积的多尺度融合递归卷积神经网络(recursive convolutional neural network, RCNN),采用编码、分离、解码结构实现单通道盲源分离。首先,编码模块提取出混合通信信号的编码特征;然后,分离模块采用不同尺度大小的卷积块以进一步提取信号的特征信息,再利用1×1卷积块捕获信号的局部和全局信息,估计出每个源信号的掩码;最后,解码模块利用掩码与混合信号的编码特征恢复源信号波形。仿真结果表明,所提多尺度融合RCNN不仅可以分离出仅有少量参数区别的混合通信信号,而且相较于U型网络(U-Net)降低了约62%的参数量和41%的计算量,同时网络也具有较强的泛化能力,可以高效面对复杂通信环境的挑战。 展开更多
关键词 单通道盲源分离 深度学习 同频同调制信号分离 多尺度融合递归卷积神经网络 通信信号处理
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结构振动信号盲源分离的快速复杂度追踪算法
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作者 胡志祥 黄磊 贺文宇 《振动工程学报》 北大核心 2025年第10期2378-2386,共9页
盲源分离(BSS)理论可用于分离出结构振动信号中的各阶模态坐标振动,而复杂度追踪(CP)是求解盲源分离问题的经典方法之一。为提高复杂度追踪算法的计算效率,本文进行了两方面改进:采用高斯分布的负对数函数这一非线性函数估计信号复杂度... 盲源分离(BSS)理论可用于分离出结构振动信号中的各阶模态坐标振动,而复杂度追踪(CP)是求解盲源分离问题的经典方法之一。为提高复杂度追踪算法的计算效率,本文进行了两方面改进:采用高斯分布的负对数函数这一非线性函数估计信号复杂度,并推导出可快速计算信号复杂度及其梯度的计算公式;采用基于子空间搜索的梯度下降算法,在降维后的子空间中计算最优解混向量。所推导公式在计算复杂度及其梯度时只需采用混合信号的协方差矩阵和时延协方差矩阵,而无需使用全部信号数据。利用数值算例和框架振动数据对所提方法进行研究,结果表明,快速复杂度追踪算法在计算效率方面高于传统方法,并且能正确地分离出结构模态坐标振动。 展开更多
关键词 盲源分离 模态参数识别 复杂度追踪 梯度下降 子空间搜索
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基于盲源分离的多人呼吸信号检测方法 被引量:1
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作者 杨轩 王子颖 +2 位作者 张力 赵恒 洪弘 《雷达学报(中英文)》 北大核心 2025年第1期117-134,共18页
近年来,人们越来越关注多人环境下的呼吸监测,以及如何同时监测多人的健康状态。在多人呼吸检测的算法中,盲源分离算法因其无需先验信息并且对硬件性能依赖性较小而备受研究者关注。然而,在多人呼吸监测场景中,目前的盲源分离算法通常... 近年来,人们越来越关注多人环境下的呼吸监测,以及如何同时监测多人的健康状态。在多人呼吸检测的算法中,盲源分离算法因其无需先验信息并且对硬件性能依赖性较小而备受研究者关注。然而,在多人呼吸监测场景中,目前的盲源分离算法通常将相位信号作为源信号进行分离,该文引入FMCW雷达下距离维信号和相位信号的对比,推导出相位信号作为源信号存在近似误差,并通过仿真验证距离维信号作为源信号时分离效果更好。另外,该文提出了基于非圆复数独立成分分析的多人呼吸信号分离算法,分析了不同呼吸信号参数对分离效果的影响,仿真和实测实验表明,所提出的方法适用于天线个数不小于目标个数时多人呼吸信号的检测,并且在目标角度差为9.46°时,也能够准确分离呼吸信号。 展开更多
关键词 非接触呼吸检测 FMCW雷达 多人呼吸检测 盲源分离 复数独立成分分析
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