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Evaluating Partitioning Based Clustering Methods for Extended Non-negative Matrix Factorization (NMF)
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作者 Neetika Bhandari Payal Pahwa 《Intelligent Automation & Soft Computing》 SCIE 2023年第2期2043-2055,共13页
Data is humongous today because of the extensive use of World WideWeb, Social Media and Intelligent Systems. This data can be very important anduseful if it is harnessed carefully and correctly. Useful information can... Data is humongous today because of the extensive use of World WideWeb, Social Media and Intelligent Systems. This data can be very important anduseful if it is harnessed carefully and correctly. Useful information can beextracted from this massive data using the Data Mining process. The informationextracted can be used to make vital decisions in various industries. Clustering is avery popular Data Mining method which divides the data points into differentgroups such that all similar data points form a part of the same group. Clusteringmethods are of various types. Many parameters and indexes exist for the evaluationand comparison of these methods. In this paper, we have compared partitioningbased methods K-Means, Fuzzy C-Means (FCM), Partitioning AroundMedoids (PAM) and Clustering Large Application (CLARA) on secure perturbeddata. Comparison and identification has been done for the method which performsbetter for analyzing the data perturbed using Extended NMF on the basis of thevalues of various indexes like Dunn Index, Silhouette Index, Xie-Beni Indexand Davies-Bouldin Index. 展开更多
关键词 Clustering CLARA Davies-Bouldin index Dunn index FCM intelligent systems K-means non-negative matrix factorization(nmf) PAM privacy preserving data mining Silhouette index Xie-Beni index
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NMF声场分离技术在语音识别中的优化研究 被引量:1
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作者 王树斌 《电声技术》 2025年第1期68-70,共3页
研究基于L2正则化非负矩阵分解(Non-negative Matrix Factorization,NMF)技术的声场分离方法在语音识别中的优化效果。介绍基于声场分离技术的语音识别方法,随后提出通过引入L2正则化项增强NMF的稳定性和稀疏性。为验证所提方法的有效性... 研究基于L2正则化非负矩阵分解(Non-negative Matrix Factorization,NMF)技术的声场分离方法在语音识别中的优化效果。介绍基于声场分离技术的语音识别方法,随后提出通过引入L2正则化项增强NMF的稳定性和稀疏性。为验证所提方法的有效性,实验使用WSJ0-2mix数据集并基于Python实现L2正则化NMF算法,结合HuggingFace Transformers框架对分离后的语音信号进行语音识别测试。结果表明,L2正则化显著降低词错误率,证明了该方法在复杂声场环境下的有效性。 展开更多
关键词 声场分离 L2正则化 非负矩阵分解(nmf) 语音识别
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基于人脸识别NMF算法的鲁棒性研究
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作者 吴思远 陈良维 张靓 《成都航空职业技术学院学报》 2025年第2期78-83,共6页
非负矩阵分解(NMF)是一种有效的多变量数据分解方法,而采用不同正则化的NMF算法在特定类型的数据上会具有不同的鲁棒性。通过对比标准NMF算法与基于L_(2,1)范数正则化条件下的NMF算法,在处理不同规模噪声时的数据重建和图像分类能力,以... 非负矩阵分解(NMF)是一种有效的多变量数据分解方法,而采用不同正则化的NMF算法在特定类型的数据上会具有不同的鲁棒性。通过对比标准NMF算法与基于L_(2,1)范数正则化条件下的NMF算法,在处理不同规模噪声时的数据重建和图像分类能力,以此来评估NMF算法在人脸识别中的鲁棒性。其中原始数据集有两种,分别为ORL数据集和YalB数据集;噪声类型有三种:随机噪声、块遮挡噪声和高斯噪声。结果表明,噪声的尺度越小,NMF算法受到的影响越小,集群的性能越好;在相同数据集受到相同噪声污染的情况下,基于L_(2,1)范数的NMF的整体鲁棒性优于标准的NMF算法。 展开更多
关键词 非负矩阵分解 鲁棒性 噪声 人脸识别
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基于自适应空谱约束的加权残差NMF高光谱图像解混
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作者 陈善学 戚俊杰 《信号处理》 北大核心 2025年第3期553-568,共16页
标准的非负矩阵分解(Nonnegative Matrix Factorization,NMF)模型应用于高光谱图像解混时,由于模型的非凸性、光谱和空间先验信息未充分利用的问题,导致解混精度不高。为提高解混性能,提出了一种基于自适应空谱约束的加权残差非负矩阵... 标准的非负矩阵分解(Nonnegative Matrix Factorization,NMF)模型应用于高光谱图像解混时,由于模型的非凸性、光谱和空间先验信息未充分利用的问题,导致解混精度不高。为提高解混性能,提出了一种基于自适应空谱约束的加权残差非负矩阵分解高光谱图像解混算法。该算法首先,对传统的NMF模型进行改进,利用在迭代过程中原始高光谱图像矩阵与重构图像矩阵之间的残差来构建残差权重因子,为损失函数的每一行分配贡献权重,以减轻噪声的影响,提高算法的鲁棒性。其次,为利用高光谱图像丰富的先验信息,算法引入像元空谱相似度来衡量像元间的相似性以捕获像元在空间及光谱上的联系,并由相似度矩阵自适应地确定像元邻域来构造空间权重因子,提升了丰度的分段平滑性。此外,结合丰度矩阵的固有特征,构造光谱权重因子,促进了丰度的稀疏性。最后,由于高光谱图像具有较高的光谱分辨率,相邻波段的反射值变化较小,因此端元光谱具有一定的平滑度,算法通过端元光谱反射值间的差异分配平滑权重,以调整在迭代过程中端元光谱的平滑程度。本文利用梯度下降推导出算法的乘法更新规则,为证明所提算法的有效性,将其与其他几种算法在模拟数据以及Jasper Ridge和Urban两个真实高光谱数据上进行实验,实验结果验证了该算法具有更好的解混性能。 展开更多
关键词 高光谱图像解混 非负矩阵分解 加权残差 像元空谱相似度 平滑权重
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基于WPG-KNMF的非线性动态过程监控研究
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作者 张成 邓成龙 李元 《控制理论与应用》 北大核心 2025年第3期569-578,共10页
针对非线性动态过程故障检测问题,本文提出一种基于Wasserstein距离投影梯度核非负矩阵分解(WPGKN-MF)的故障检测方法.首先,采用投影梯度方法对KNMF的基矩阵和系数矩阵进行更新.其次,在高维特征空间中,使用Wasserstein距离结合滑动窗口... 针对非线性动态过程故障检测问题,本文提出一种基于Wasserstein距离投影梯度核非负矩阵分解(WPGKN-MF)的故障检测方法.首先,采用投影梯度方法对KNMF的基矩阵和系数矩阵进行更新.其次,在高维特征空间中,使用Wasserstein距离结合滑动窗口方法,构造新的统计量进行故障检测.本文方法将KNMF中迭代方法改进为投影梯度方法,通过KNMF将数据的非线性结构捕获,并结合Wasserstein距离消除样本间自相关性影响.通过一个数值例子和基于工业控制系统执行器诊断方法的开发与应用(DAMADICS)过程的实验数据进行仿真实验,与传统核主成分分析(KPCA)、核非负矩阵分解等方法进行对比,仿真结果验证了本文所提方法的有效性. 展开更多
关键词 核非负矩阵分解 非线性过程 动态过程 投影梯度 Wasserstein距离 故障检测
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Neural Tucker Factorization
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作者 Peng Tang Xin Luo 《IEEE/CAA Journal of Automatica Sinica》 2025年第2期475-477,共3页
Dear Editor,This letter presents a novel latent factorization model for high dimensional and incomplete (HDI) tensor, namely the neural Tucker factorization (Neu Tuc F), which is a generic neural network-based latent-... Dear Editor,This letter presents a novel latent factorization model for high dimensional and incomplete (HDI) tensor, namely the neural Tucker factorization (Neu Tuc F), which is a generic neural network-based latent-factorization-of-tensors model under the Tucker decomposition framework. 展开更多
关键词 neu tuc f neural tucker factorization latent factorization model high dimensional tensor tucker decomposition framework neural network incomplete tensor latent factorization
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Changes in factor profiles deriving from photochemical losses of volatile organic compounds:Insight from daytime and nighttime positive matrix factorization ana
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作者 Baoshuang Liu Tao Yang +9 位作者 Sicong Kang Fuquan Wang Haixu Zhang Man Xu Wei Wang Jinrui Bai Shaojie Song Qili Dai Yinchang Feng Philip K.Hopke 《Journal of Environmental Sciences》 2025年第5期627-639,共13页
Substantial effects of photochemical reaction losses of volatile organic compounds(VOCs)on factor profiles can be investigated by comparing the differences between daytime and nighttime dispersion-normalized VOC data ... Substantial effects of photochemical reaction losses of volatile organic compounds(VOCs)on factor profiles can be investigated by comparing the differences between daytime and nighttime dispersion-normalized VOC data resolved profiles.Hourly speciated VOC data measured in Shijiazhuang,China from May to September 2021 were used to conduct study.The mean VOC concentration in the daytime and at nighttime were 32.8 and 36.0 ppbv,respectively.Alkanes and aromatics concentrations in the daytime(12.9 and 3.08 ppbv)were lower than nighttime(15.5 and 3.63 ppbv),whereas that of alkenes showed the opposite tendency.The concentration differences between daytime and nighttime for alkynes and halogenated hydrocarbonswere uniformly small.The reactivities of the dominant species in factor profiles for gasoline emissions,natural gas and diesel vehicles,and liquefied petroleum gas were relatively low and their profiles were less affected by photochemical losses.Photochemical losses produced a substantial impact on the profiles of solvent use,petrochemical industry emissions,combustion sources,and biogenic emissions where the dominant species in these factor profiles had high reactivities.Although the profile of biogenic emissions was substantially affected by photochemical loss of isoprene,the low emissions at nighttime also had an important impact on its profile.Chemical losses of highly active VOC species substantially reduced their concentrations in apportioned factor profiles.This study results were consistent with the analytical results obtained through initial concentration estimation,suggesting that the initial concentration estimation could be the most effective currently availablemethod for the source analyses of active VOCs although with uncertainty. 展开更多
关键词 Volatile organic compounds Dispersion normalization Photochemical loss Factor profile Positive matrix factorization
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萃取精馏回收废剥离液中二乙二醇单甲醚(MDG)和N-甲基甲酰胺(NMF)的研究
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作者 李璟 邓国平 张井峰 《精细石油化工进展》 2025年第4期47-51,共5页
以丙三醇为萃取剂,对废剥离液中沸点接近的二乙二醇单甲醚(MDG)和N-甲基甲酰胺(NMF)进行萃取精馏,逐步分离和回收,并通过流程模拟分析最佳的萃取剂加入量和回流比等设计工况,优化精馏系统的主要工艺参数。结果表明:脱轻塔和脱重塔的最... 以丙三醇为萃取剂,对废剥离液中沸点接近的二乙二醇单甲醚(MDG)和N-甲基甲酰胺(NMF)进行萃取精馏,逐步分离和回收,并通过流程模拟分析最佳的萃取剂加入量和回流比等设计工况,优化精馏系统的主要工艺参数。结果表明:脱轻塔和脱重塔的最佳回流比分别为3.7和0.8;萃取塔的剂液比为10,回流比为12.5;回收塔的最佳回流比为0.6,回收得到的MDG产品质量分数为99.01%,NMF产品质量分数为99.01%,精馏回收系统能耗为16.78 MJ(按每千克产品计算)。采用萃取精馏工艺回收得到高纯度的MDG和NMF产品,拓宽了产品的应用范围,提升了危险废物的资源化利用效果。 展开更多
关键词 废剥离液 二乙二醇单甲醚 N-甲基甲酰胺 萃取精馏
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Research on Library Data Governance for Data Factorization
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作者 Yan Jiang 《Journal of Electronic Research and Application》 2025年第6期159-166,共8页
Data factors are becoming the core driving force in the intelligent transformation of libraries.Based on a systematic review of the progress in data governance practices in libraries both domestically and internationa... Data factors are becoming the core driving force in the intelligent transformation of libraries.Based on a systematic review of the progress in data governance practices in libraries both domestically and internationally,this study delves into the mechanism by which data governance promotes data factorization and proposes implementation paths for data governance oriented toward data factorization.The aim is to facilitate the intelligent transformation and high-quality development of libraries. 展开更多
关键词 Data factorization LIBRARIES Data governance Mechanism of action Practical paths
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Predicting CircRNA-Disease Associations via Non-Negative Matrix Factorization Fused with Multiple Similarity Networks
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作者 LU Pengli LI Shiying 《Journal of Shanghai Jiaotong university(Science)》 2025年第4期709-719,共11页
CircRNAs,widely found throughout the human bodies,play a crucial role in regulating various biological processes and are closely linked to complex human diseases.Investigating potential associations between circRNAs a... CircRNAs,widely found throughout the human bodies,play a crucial role in regulating various biological processes and are closely linked to complex human diseases.Investigating potential associations between circRNAs and diseases can enhance our understanding of diseases and provide new strategies and tools for early diagnosis,treatment,and disease prevention.However,existing models have limitations in accurately capturing similarities,handling the sparse and noise attributes of association networks,and fully leveraging bioinformatical aspects from multiple viewpoints.To address these issues,this study introduces a new non-negative matrix factorization-based framework called NMFMSN.First,we incorporate circRNA sequence data and disease semantic information to compute circRNA and disease similarity,respectively.Given the sparse known associations between circRNAs and diseases,we reconstruct the network to complete more associations by imputing missing links based on neighboring circRNA and disease interactions.Finally,we integrate these two similarity networks into a non-negative matrix factorization framework to identify potential circRNA-disease associations.Upon conducting 5-fold cross-validation and leave-one-out cross-validation,the AUC values for NMFMSN reach 0.9712 and 0.9768,respectively,outperforming the currently most advanced models.Case studies on lung cancer and hepatocellular carcinoma show that NMFMSN is a good way to predict new associations between circRNAs and diseases. 展开更多
关键词 circRNA-disease associations circRNA sequence data disease semantic information non-negative matrix factorization
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Nonlinear Control for Unstable Networked Plants in the Presence of Actuator and Sensor Limitations Using Robust Right Coprime Factorization
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作者 Yuanhong Xu Mingcong Deng 《IEEE/CAA Journal of Automatica Sinica》 2025年第3期516-527,共12页
In this paper,a nonlinear control approach for an unstable networked plant in the presence of actuator and sensor limitations using robust right coprime factorization is proposed.The actuator is limited by upper and l... In this paper,a nonlinear control approach for an unstable networked plant in the presence of actuator and sensor limitations using robust right coprime factorization is proposed.The actuator is limited by upper and lower constraints and the sensor in the feedback loop is subjected to network-induced unknown time-varying delay and noise.With this nonlinear control method,we first employ right coprime factorization based on isomorphism and operator theory to factorize the plant,so that bounded input bounded output(BIBO)stability can be guaranteed.Next,continuous-time generalized predictive control(CGPC)is utilized for the unstable operator of the right coprime factorized plant to guarantee inner stability and enables the closed-loop dynamics of the system with predictive characteristics.Meanwhile,a second-Do F(degrees of freedom)switched controller that satisfies a perturbed Bezout identity and a robustness condition is designed.By using the CGPC controller that possesses predictive behavior and the second-Do F switched stabilizer,the overall stability of the plant subjected to actuator limitations is guaranteed.To address sensor limitations that exist in networked plants in the form of delay and noise which often cause system performance degradation,we implement an identity operator definition in the feedback loop to compensate for these adverse effects.Further,a pre-operator is designed to ensure that the plant output tracks the reference input.Finally,the effectiveness of the proposed design scheme is demonstrated by simulations. 展开更多
关键词 Actuator and sensor limitations identity operator definition network-induced limitations robust right coprime factorization unstable plant
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Source apportionment of PM_(2.5) using dispersion normalized positive matrix factorization(DN-PMF)in Beijing and Baoding,China
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作者 Ilhan Ryoo Taeyeon Kim +6 位作者 Jiwon Ryu Yeonseung Cheong Kwang-joo Moon Kwon-ho Jeon Philip K.Hopke Seung-Muk Yi Jieun Park 《Journal of Environmental Sciences》 2025年第9期395-408,共14页
Fine particulatematter(PM_(2.5))samples were collected in two neighboring cities,Beijing and Baoding,China.High-concentration events of PM_(2.5) in which the average mass concentration exceeded 75μg/m^(3) were freque... Fine particulatematter(PM_(2.5))samples were collected in two neighboring cities,Beijing and Baoding,China.High-concentration events of PM_(2.5) in which the average mass concentration exceeded 75μg/m^(3) were frequently observed during the heating season.Dispersion Normalized Positive Matrix Factorization was applied for the source apportionment of PM_(2.5) as minimize the dilution effects of meteorology and better reflect the source strengths in these two cities.Secondary nitrate had the highest contribution for Beijing(37.3%),and residential heating/biomass burning was the largest for Baoding(27.1%).Secondary nitrate,mobile,biomass burning,district heating,oil combustion,aged sea salt sources showed significant differences between the heating and non-heating seasons in Beijing for same period(2019.01.10–2019.08.22)(Mann-Whitney Rank Sum Test P<0.05).In case of Baoding,soil,residential heating/biomass burning,incinerator,coal combustion,oil combustion sources showed significant differences.The results of Pearson correlation analysis for the common sources between the two cities showed that long-range transported sources and some sources with seasonal patterns such as oil combustion and soil had high correlation coefficients.Conditional Bivariate Probability Function(CBPF)was used to identify the inflow directions for the sources,and joint-PSCF(Potential Source Contribution Function)was performed to determine the common potential source areas for sources affecting both cities.These models facilitated a more precise verification of city-specific influences on PM_(2.5) sources.The results of this study will aid in prioritizing air pollution mitigation strategies during the heating season and strengthening air quality management to reduce the impact of downwind neighboring cities. 展开更多
关键词 Source apportionment Dispersion normalized positive matrix factorization Adjacent cities Inter-city impact Source location Heating season Air quality management
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Latent-Factorization-of-Tensors-Incorporated Battery Cycle Life Prediction
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作者 Minzhi Chen Li Tao +1 位作者 Jungang Lou Xin Luo 《IEEE/CAA Journal of Automatica Sinica》 2025年第3期633-635,共3页
Dear Editor,This letter presents a latent-factorization-of-tensors(LFT)-incorporated battery cycle life prediction framework.Data-driven prognosis and health management(PHM)for battery pack(BP)can boost the safety and... Dear Editor,This letter presents a latent-factorization-of-tensors(LFT)-incorporated battery cycle life prediction framework.Data-driven prognosis and health management(PHM)for battery pack(BP)can boost the safety and sustainability of a battery management system(BMS),which relies heavily on the quality of the measured BP data like the voltage(V),current(I),and temperature(T). 展开更多
关键词 health management battery pack bp can latent factorization tensors battery cycle life prediction health management phm battery cycle battery pack battery management system bms which
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心内科住院患者并发院内感染的危险因素调查
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作者 陈恒 赵登峰 +1 位作者 李杰 苏珊珊 《中国病原生物学杂志》 北大核心 2026年第1期82-85,共4页
目的分析心内科住院患者并发院内感染的危险因素,探讨炎性因子水平在感染发生中的作用。方法选取2023年1月至2024年12月本院心内科住院的152例合并院内感染患者作为研究对象,并纳入90例未感染患者作为对照组。采集感染患者标本进行病原... 目的分析心内科住院患者并发院内感染的危险因素,探讨炎性因子水平在感染发生中的作用。方法选取2023年1月至2024年12月本院心内科住院的152例合并院内感染患者作为研究对象,并纳入90例未感染患者作为对照组。采集感染患者标本进行病原体分离鉴定,检测血清白细胞介素-6(IL-6)和肿瘤坏死因子-α(TNF-α)水平。通过单因素χ2检验和多因素Logistic回归分析感染危险因素。结果152例院内感染患者中,医院获得性肺炎(43.42%)和导管相关血流感染(28.95%)为主要感染类型,共检出病原菌163株,以革兰阴性菌为主(57.67%),其中肺炎克雷伯菌(28.83%)最常见。感染组IL-6和TNF-α水平分别为(113.55±10.29)pg/mL和(88.41±8.38)pg/mL,显著高于非感染组(P<0.05),合并糖尿病患者水平显著高于非糖尿病患者(P<0.05)。单因素分析显示,年龄≥65岁、合并糖尿病、慢性肾病、COPD、侵入性操作≥2项、抗菌药物使用≥10 d及PPI使用与感染相关(P<0.05);多因素Logistic回归表明,年龄≥65岁(OR=19.652)、合并糖尿病(OR=11.926)、COPD(OR=6.399)、侵入性操作≥2项(OR=14.035)、抗菌药物使用≥10 d(OR=13.956)为独立危险因素(P<0.05)。结论心内科住院患者院内感染以革兰阴性菌为主,高龄、糖尿病、COPD、侵入性操作及长期抗菌药物使用是重要危险因素,监测炎性因子水平或可辅助感染评估,临床需针对高危因素制定防控策略。 展开更多
关键词 心内科 院内感染 危险因素 病原谱 炎性因子
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基于RST-NMF模型的微震信号时频分析和识别 被引量:5
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作者 张法全 王海飞 +1 位作者 王国富 叶金才 《振动与冲击》 EI CSCD 北大核心 2019年第17期1-7,共7页
针对微震信号难以精确识别的问题,提出一种基于RST-NMF微震信号时频分析和分类方法。首先对微震信号进行S变换得到时频矩阵,然后在频率方向上进行重排,再借助非负矩阵分解技术得到时、频域的分解向量,从中提取宏观、微观统计量构造信号... 针对微震信号难以精确识别的问题,提出一种基于RST-NMF微震信号时频分析和分类方法。首先对微震信号进行S变换得到时频矩阵,然后在频率方向上进行重排,再借助非负矩阵分解技术得到时、频域的分解向量,从中提取宏观、微观统计量构造信号的特征空间,最后采用SVM进行分类。在三道沟井田的试验结果表明,RST时频分析方法对频域分散的能量团有很好的聚集性,时频矩阵经NMF分解最大程度上获取微震信号的局部特征和内在联系,提取分解向量的宏观和微观统计量保证了信号特征空间的完备性,有效地避免了分类时过拟合的发生,分类准确率达到了94%。 展开更多
关键词 微震信号 RST nmf SVM
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LPQ与NMF特征融合的人脸识别 被引量:3
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作者 朱长水 袁宝华 +1 位作者 曹红根 袁红星 《信阳师范学院学报(自然科学版)》 CAS 北大核心 2013年第1期133-135,139,共4页
提出一种融合局部相位量化(LPQ)和非负矩阵分解(NMF)进行人脸识别的方法.该方法首先采用LPQ算子提取分块人脸图像的LPQ直方图序列(LPQHS),根据每块的贡献度,得到权重的直方图序列(Weight LPQHS),然后采用NMF方法提取其非负子空间及其系... 提出一种融合局部相位量化(LPQ)和非负矩阵分解(NMF)进行人脸识别的方法.该方法首先采用LPQ算子提取分块人脸图像的LPQ直方图序列(LPQHS),根据每块的贡献度,得到权重的直方图序列(Weight LPQHS),然后采用NMF方法提取其非负子空间及其系数矩阵,最后根据最近邻原则进行识别.在AR和YALE标准人脸数据库上的实验结果表明,该方法具有较高的识别率. 展开更多
关键词 局部相位量化(LPQ) 非负矩阵分解(nmf) 人脸识别
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基于约束NMF的盲源分离算法 被引量:4
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作者 赵知劲 卢宏 徐春云 《压电与声光》 CSCD 北大核心 2010年第6期1049-1052,共4页
非负矩阵分解(NMF)是解决非独立源信号混合的盲分离的另一条新途径。该文提出一种基于约束NMF的盲源分离算法,在对NMF估计得到的源信号施加最小相关约束的基础上,对混合矩阵估计施加行列式约束,实现NMF的唯一分解。与已有算法相比,本算... 非负矩阵分解(NMF)是解决非独立源信号混合的盲分离的另一条新途径。该文提出一种基于约束NMF的盲源分离算法,在对NMF估计得到的源信号施加最小相关约束的基础上,对混合矩阵估计施加行列式约束,实现NMF的唯一分解。与已有算法相比,本算法放宽了对混合矩阵的稀疏性要求,大幅提高了信号分离质量。该算法仍适用于独立源信号分离问题。 展开更多
关键词 盲源分离(BSS) 非负矩阵分解(nmf) 行列式准则 最小相关约束
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基于NMF和SVD相结合的Contourlet域鲁棒水印算法 被引量:14
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作者 刘如京 杨韫饴 王玲 《计算机应用研究》 CSCD 北大核心 2010年第9期3507-3509,3513,共4页
为了提高变换域数字水印技术的鲁棒性,提出了一种在Contourlet域将非负矩阵变换(NMF)与奇异值变换(SVD)相结合的鲁棒水印算法。宿主图像经过Contourlet变换后,对低频子带进行非负矩阵变换,然后对非负基向量组W进行奇异值分解,最后... 为了提高变换域数字水印技术的鲁棒性,提出了一种在Contourlet域将非负矩阵变换(NMF)与奇异值变换(SVD)相结合的鲁棒水印算法。宿主图像经过Contourlet变换后,对低频子带进行非负矩阵变换,然后对非负基向量组W进行奇异值分解,最后将经过Arnold置乱的水印图像嵌入到奇异值中。实验结果表明,该图像水印算法在获得良好视觉效果的同时,对于加噪声、滤波、剪切等图像攻击有较好的鲁棒性。 展开更多
关键词 非负矩阵变换 奇异值变换 图像置乱
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基于小波变换和NMF的人脸识别方法的研究 被引量:8
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作者 张志伟 杨帆 +1 位作者 夏克文 杨瑞霞 《计算机工程》 CAS CSCD 北大核心 2007年第6期176-178,共3页
为了克服PCA、ICA等传统方法在人脸图像特征抽取时存在速度慢、识别率低的缺点,该文提出了一种将非负矩分解思想应用于人脸特征提取的算法。利用小波变换对人脸图像进行分解,对其中包含主要信息的低频子带运用NMF构造特征子空间,在子空... 为了克服PCA、ICA等传统方法在人脸图像特征抽取时存在速度慢、识别率低的缺点,该文提出了一种将非负矩分解思想应用于人脸特征提取的算法。利用小波变换对人脸图像进行分解,对其中包含主要信息的低频子带运用NMF构造特征子空间,在子空间内实现识别。实验结果表明,该方法实用、有效,减少了计算量,提高了系统的识别率,使识别率达到90%以上,有着广泛的研究价值和应用前景。 展开更多
关键词 非负矩阵分解 小波变换 人脸识别 子空间
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一种改进的基于NMF的人脸识别方法 被引量:8
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作者 林庆 李佳 +1 位作者 雍建平 廖定安 《计算机科学》 CSCD 北大核心 2012年第5期243-245,270,共4页
针对NMF(非负矩阵分解)算法基于局部特征提取的特点,提出了一种对NMF基矩阵的处理方法,以提高在局部遮挡环境下人脸识别系统的识别率。首先使用离散小波变换得到样本的低频信息,利用NMF得到基矩阵;然后通过阈值判断提取能够突出表现人... 针对NMF(非负矩阵分解)算法基于局部特征提取的特点,提出了一种对NMF基矩阵的处理方法,以提高在局部遮挡环境下人脸识别系统的识别率。首先使用离散小波变换得到样本的低频信息,利用NMF得到基矩阵;然后通过阈值判断提取能够突出表现人脸特征的部分,得到优化后的特征子空间,并将样本在该子空间上投影;最后使用支持向量机对所得到的投影系数分类。实验结果表明,优化算法其运算时间较短,且能有效地提高人脸在部分遮挡环境中的识别率。 展开更多
关键词 非负矩阵分解 离散小波变换 人脸识别 基矩阵
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