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WEIGHTED LEAST SQUARE METHOD FOR S-N CURVE FITTING 被引量:7
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作者 吉凤贤 姚卫星 《Transactions of Nanjing University of Aeronautics and Astronautics》 EI 2004年第1期53-57,共5页
An S-N curve fitting approach is proposed based on the weighted least square method, and the weights are inversely proportional to the length of mean confidence intervals of experimental data sets. The assumption coin... An S-N curve fitting approach is proposed based on the weighted least square method, and the weights are inversely proportional to the length of mean confidence intervals of experimental data sets. The assumption coincides with the physical characteristics of the fatigue life scatter. Two examples demonstrate the method. It is shown that the method has better accuracy and reasonableness compared with the usual least square method. 展开更多
关键词 fatigue test S-N curve weighted least square method confidence interval
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ADAPTIVE FUSION ALGORITHMS BASED ON WEIGHTED LEAST SQUARE METHOD 被引量:9
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作者 SONG Kaichen NIE Xili 《Chinese Journal of Mechanical Engineering》 SCIE EI CAS CSCD 2006年第3期451-454,共4页
Weighted fusion algorithms,which can be applied in the area of multi-sensor data fusion,are advanced based on weighted least square method.A weighted fusion algorithm,in which the relationship between weight coefficie... Weighted fusion algorithms,which can be applied in the area of multi-sensor data fusion,are advanced based on weighted least square method.A weighted fusion algorithm,in which the relationship between weight coefficients and measurement noise is established,is proposed by giving attention to the correlation of measurement noise.Then a simplified weighted fusion algorithm is deduced on the assumption that measurement noise is uncorrelated.In addition,an algorithm,which can adjust the weight coefficients in the simplified algorithm by making estimations of measurement noise from measurements,is presented.It is proved by emulation and experiment that the precision performance of the multi-sensor system based on these algorithms is better than that of the multi-sensor system based on other algorithms. 展开更多
关键词 weighted least square method Data fusion Measurement noise CORRELATION
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Preconditioned iterative methods for solving weighted linear least squares problems 被引量:2
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作者 沈海龙 邵新慧 张铁 《Applied Mathematics and Mechanics(English Edition)》 SCIE EI 2012年第3期375-384,共10页
A class of preconditioned iterative methods, i.e., preconditioned generalized accelerated overrelaxation (GAOR) methods, is proposed to solve linear systems based on a class of weighted linear least squares problems... A class of preconditioned iterative methods, i.e., preconditioned generalized accelerated overrelaxation (GAOR) methods, is proposed to solve linear systems based on a class of weighted linear least squares problems. The convergence and comparison results are obtained. The comparison results show that the convergence rate of the preconditioned iterative methods is better than that of the original methods. Furthermore, the effectiveness of the proposed methods is shown in the numerical experiment. 展开更多
关键词 PRECONDITIONER generalized accelerated overrelaxation (GAOR) method weighted linear least squares problem CONVERGENCE
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Numerical Simulation of Oil-Water Two-Phase Flow in Low Permeability Tight Reservoirs Based on Weighted Least Squares Meshless Method
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作者 Xin Liu Kai Yan +3 位作者 Bo Fang Xiaoyu Sun Daqiang Feng Li Yin 《Fluid Dynamics & Materials Processing》 EI 2024年第7期1539-1552,共14页
In response to the complex characteristics of actual low-permeability tight reservoirs,this study develops a meshless-based numerical simulation method for oil-water two-phase flow in these reservoirs,considering comp... In response to the complex characteristics of actual low-permeability tight reservoirs,this study develops a meshless-based numerical simulation method for oil-water two-phase flow in these reservoirs,considering complex boundary shapes.Utilizing radial basis function point interpolation,the method approximates shape functions for unknown functions within the nodal influence domain.The shape functions constructed by the aforementioned meshless interpolation method haveδ-function properties,which facilitate the handling of essential aspects like the controlled bottom-hole flow pressure in horizontal wells.Moreover,the meshless method offers greater flexibility and freedom compared to grid cell discretization,making it simpler to discretize complex geometries.A variational principle for the flow control equation group is introduced using a weighted least squares meshless method,and the pressure distribution is solved implicitly.Example results demonstrate that the computational outcomes of the meshless point cloud model,which has a relatively small degree of freedom,are in close agreement with those of the Discrete Fracture Model(DFM)employing refined grid partitioning,with pressure calculation accuracy exceeding 98.2%.Compared to high-resolution grid-based computational methods,the meshless method can achieve a better balance between computational efficiency and accuracy.Additionally,the impact of fracture half-length on the productivity of horizontal wells is discussed.The results indicate that increasing the fracture half-length is an effective strategy for enhancing production from the perspective of cumulative oil production. 展开更多
关键词 weighted least squares method meshless method numerical simulation of low permeability tight reservoirs oil-water two-phase flow fracture half-length
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STUDY ON FREQUENCY ESTIMATION BASED ON WEIGHTED LEAST SQUARE METHOD WITH THREE FOURIER COEFFICIENTS
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作者 Ren Chunhui Fu Yusheng 《Journal of Electronics(China)》 2013年第5期430-435,共6页
In this paper,a sinusoidal signal frequency estimation algorithm is proposed by weighted least square method.Based on the idea of Provencher,three biggest Fourier coefficients in the maximum periodogram are considered... In this paper,a sinusoidal signal frequency estimation algorithm is proposed by weighted least square method.Based on the idea of Provencher,three biggest Fourier coefficients in the maximum periodogram are considered,the Fourier coefficients can be written as three equations about the amplitude,phase,and frequency,and the frequency is estimated by solving equations.Because of the error of measurement,weighted least square method is used to solve the frequency equation and get the signal frequency.It is shown that the proposed estimator can approach the Cramer-Rao Bound(CRB)with a low Signal-to-Noise Ratio(SNR)threshold and has a higher accuracy. 展开更多
关键词 Sinusoidal signal Frequency estimation Fourier coefficients weighted least square method
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A STUDY ON THE WEIGHT FUNCTION OF THE MOVING LEAST SQUARE APPROXIMATION IN THE LOCAL BOUNDARY INTEGRAL EQUATION METHOD 被引量:4
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作者 Long Shuyao Hu De’an (Department of Engineering Mechanics,Hunan University,Changsha 410082,China) 《Acta Mechanica Solida Sinica》 SCIE EI 2003年第3期276-282,共7页
The meshless method is a new numerical technique presented in recent years.It uses the moving least square(MLS)approximation as a shape function.The smoothness of the MLS approximation is determined by that of the bas... The meshless method is a new numerical technique presented in recent years.It uses the moving least square(MLS)approximation as a shape function.The smoothness of the MLS approximation is determined by that of the basic function and of the weight function,and is mainly determined by that of the weight function.Therefore,the weight function greatly affects the accuracy of results obtained.Different kinds of weight functions,such as the spline function, the Gauss function and so on,are proposed recently by many researchers.In the present work,the features of various weight functions are illustrated through solving elasto-static problems using the local boundary integral equation method.The effect of various weight functions on the accuracy, convergence and stability of results obtained is also discussed.Examples show that the weight function proposed by Zhou Weiyuan and Gauss and the quartic spline weight function are better than the others if parameters c and α in Gauss and exponential weight functions are in the range of reasonable values,respectively,and the higher the smoothness of the weight function,the better the features of the solutions. 展开更多
关键词 weight function meshless methods local boundary integral equation method moving least square approximation
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Recursive weighted least squares estimation algorithm based on minimum model error principle 被引量:2
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作者 雷晓云 张志安 《Defence Technology(防务技术)》 SCIE EI CAS CSCD 2021年第2期545-558,共14页
Kalman filter is commonly used in data filtering and parameters estimation of nonlinear system,such as projectile's trajectory estimation and control.While there is a drawback that the prior error covariance matri... Kalman filter is commonly used in data filtering and parameters estimation of nonlinear system,such as projectile's trajectory estimation and control.While there is a drawback that the prior error covariance matrix and filter parameters are difficult to be determined,which may result in filtering divergence.As to the problem that the accuracy of state estimation for nonlinear ballistic model strongly depends on its mathematical model,we improve the weighted least squares method(WLSM)with minimum model error principle.Invariant embedding method is adopted to solve the cost function including the model error.With the knowledge of measurement data and measurement error covariance matrix,we use gradient descent algorithm to determine the weighting matrix of model error.The uncertainty and linearization error of model are recursively estimated by the proposed method,thus achieving an online filtering estimation of the observations.Simulation results indicate that the proposed recursive estimation algorithm is insensitive to initial conditions and of good robustness. 展开更多
关键词 Minimum model error weighted least squares method State estimation Invariant embedding method Nonlinear recursive estimate
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Data point selection for weighted least square fitting of cavity decay time constant 被引量:1
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作者 何星 晏虎 +2 位作者 董理治 杨平 许冰 《Chinese Physics B》 SCIE EI CAS CSCD 2016年第1期640-646,共7页
For the accurate extraction of cavity decay time, a selection of data points is supplemented to the weighted least square method. We derive the expected precision, accuracy and computation cost of this improved method... For the accurate extraction of cavity decay time, a selection of data points is supplemented to the weighted least square method. We derive the expected precision, accuracy and computation cost of this improved method, and examine these performances by simulation. By comparing this method with the nonlinear least square fitting (NLSF) method and the linear regression of the sum (LRS) method in derivations and simulations, we find that this method can achieve the same or even better precision, comparable accuracy, and lower computation cost. We test this method by experimental decay signals. The results are in agreement with the ones obtained from the nonlinear least square fitting method. 展开更多
关键词 cavity ring-down decay time extraction weighted least square method data point selection
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Criteria for Weighted Moving-Mean Method
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作者 Shuo Jiang Jinliang Wang 《Journal of Applied Mathematics and Physics》 2019年第9期1958-1967,共10页
The moving-mean method is one of the conventional approaches for trend-extraction from a data set. It is usually applied in an empirical way. The smoothing degree of the trend depends on the selections of window lengt... The moving-mean method is one of the conventional approaches for trend-extraction from a data set. It is usually applied in an empirical way. The smoothing degree of the trend depends on the selections of window length and weighted coefficients, which are associated with the change pattern of the data. Are there any uniform criteria for determining them? The present article is a reaction to this fundamental problem. By investigating many kinds of data, the results show that: 1) Within a certain range, the more points which participate in moving-mean, the better the trend function. However, in case the window length is too long, the trend function may tend to the ordinary global mean. 2) For a given window length, what matters is the choice of weighted coefficients. As the five-point case concerned, the local-midpoint, local-mean and global-mean criteria hold. Among these three criteria, the local-mean one has the strongest adaptability, which is suggested for your usage. 展开更多
关键词 weighted Moving-Mean least square method Extreme-Point Symmetric Mode Decomposition method Auto REGRESSIVE Moving-Mean Data Analysis methods
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基于WLS-AUKF混合算法的主动配电网联合状态估计 被引量:1
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作者 满延露 刘敏 《电子科技》 2025年第2期93-102,共10页
响应负载和分布式能源的随机性和波动性、相量测量单元(Phasor Measurement Unit,PMU)配置的经济性需求对配电网状态估计提出了更高要求。文中提出了考虑PMU配置优化的加权最小二乘法(Weighted Least Squares,WLS)-自适应无迹卡尔曼滤波... 响应负载和分布式能源的随机性和波动性、相量测量单元(Phasor Measurement Unit,PMU)配置的经济性需求对配电网状态估计提出了更高要求。文中提出了考虑PMU配置优化的加权最小二乘法(Weighted Least Squares,WLS)-自适应无迹卡尔曼滤波(Adaptive Untraced Kalman Filtering,AUKF)的主动配电网联合状态估计。通过改进粒子群优化算法(Metropolis-Hastings Crossover Particle Swarm Optimization,MHCPSO)实现PMU优化配置,再结合WLS和AUKF提出联合状态估计。联合方式是WLS为AUKF馈送稳健的量测数据,AUKF为WLS提供先验预测值并补充量测冗余。仿真结果表明,在相同PMU数量下,MHCPSO算法比遗传粒子群算法(Genetic Algorithm Particle Swarm Optimization,GAPSO)估计精度更高。在相同状态估计误差情况下,MHCPSO算法配置的PMU数量比GAPSO算法可最多减少4个。在光伏(Photovoltaic,PV)/电动汽车(Electric Vehicles,EV)并网无序充放电和某一时刻负荷突变情况下,WLS-AUKF算法均体现出了比UKF(Untraced Kalman Filtering)算法更好的估计性能。在PMU配置优化、PV/VE并网以及负荷突变3个场景中体现出了WLS-AUKF状态估计的高精度、经济性、抗差性和稳健性。 展开更多
关键词 主动配电网 联合状态估计 加权最小二乘法 自适应无迹卡尔曼滤波 PMU优化配置 改进粒子群算法 两点交叉法 Metropolis-Hastings算法 遗传粒子群算法
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基于MPSO-WLS-SVM的矿井瓦斯涌出量预测模型研究 被引量:32
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作者 付华 谢森 +1 位作者 徐耀松 陈子春 《中国安全科学学报》 CAS CSCD 北大核心 2013年第5期56-61,共6页
为有效预防瓦斯灾害,以预测矿井瓦斯涌出量为研究目的,提出经改进的粒子群算法(MPSO)优化的加权最小二乘支持向量机(WLS-SVM),并用其预测非线性动态瓦斯涌出量。算法通过对WLS-SVM的正则化参数C和高斯核参数σ寻优,建立基于MPSO优化的WL... 为有效预防瓦斯灾害,以预测矿井瓦斯涌出量为研究目的,提出经改进的粒子群算法(MPSO)优化的加权最小二乘支持向量机(WLS-SVM),并用其预测非线性动态瓦斯涌出量。算法通过对WLS-SVM的正则化参数C和高斯核参数σ寻优,建立基于MPSO优化的WLS-SVM的瓦斯涌出量预测模型,并利用某矿井监测到的各项历史数据进行实例分析。试验结果表明:该预测模型预测的最大相对误差为5.99%,最小相对误差为0.43%,平均相对误差为2.95%,较其他预测模型有更强的泛化能力和更高的预测精度。 展开更多
关键词 加权最小二乘支持向量机(wls-SVM) 瓦斯涌出量 预测 改进的粒子群(MPSO)算法
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基于多准则分区和WLS-PDIPM算法的有源配电网状态估计 被引量:15
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作者 马健 唐巍 +3 位作者 徐升 张璐 刘科研 杨德昌 《电力系统自动化》 EI CSCD 北大核心 2016年第12期28-36,共9页
针对复杂有源配电网三相不平衡状态估计计算速度较慢与计算精度较低的问题,提出了一种基于多准则分区和基本加权最小二乘法—原对偶内点法(WLS-PDIPM)混合算法的状态估计方法。基于对有源配电网中实时量测、虚拟量测和伪量测的配置分析... 针对复杂有源配电网三相不平衡状态估计计算速度较慢与计算精度较低的问题,提出了一种基于多准则分区和基本加权最小二乘法—原对偶内点法(WLS-PDIPM)混合算法的状态估计方法。基于对有源配电网中实时量测、虚拟量测和伪量测的配置分析,建立了适用于复杂有源配电网状态估计的多准则分区优化模型,该模型综合考虑了分区后各子区域规模均衡、量测冗余度均衡及伪量测平均误差均衡。通过高级量测体系(AMI)全量测点实现各子区域完全解耦,有效减小了系统规模和雅可比矩阵阶数。所提方法将WLS与PDIPM的优点相结合,在提高算法精度的同时减少了计算时间。仿真算例结果表明所提方法可实现对复杂有源配电网的合理分区,有效提高了状态估计的计算速度与求解精度。 展开更多
关键词 有源配电网 状态估计 多准则分区 wls-PDIPM混合算法 三相不平衡
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基于RSSI测距的WLS定位算法 被引量:15
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作者 罗炬锋 付耀先 王营冠 《华中科技大学学报(自然科学版)》 EI CAS CSCD 北大核心 2011年第11期34-38,共5页
结合信道模型与实际测试得出的距离越远误差越大的特点,提出一种加权最小二乘估计(WLS)算法用于未知节点的坐标定位.在定位过程中首先通过加权计算获得信道衰落因子;然后利用WLS算法得到未知节点的坐标,并推导了测距和定位的误差公式.... 结合信道模型与实际测试得出的距离越远误差越大的特点,提出一种加权最小二乘估计(WLS)算法用于未知节点的坐标定位.在定位过程中首先通过加权计算获得信道衰落因子;然后利用WLS算法得到未知节点的坐标,并推导了测距和定位的误差公式.仿真实验表明WLS算法的硬件复杂度与最小二乘(LS)算法相同,而定位精度有较大提升,并验证了误差公式推导的正确性. 展开更多
关键词 无线传感器网络 定位 接收信号强度指示 多边极大似然估计 加权最小二乘
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基于WLS-ABC算法的工业机器人参数辨识 被引量:10
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作者 丁力 吴洪涛 +3 位作者 姚裕 李耀 谢本华 陈柏 《华南理工大学学报(自然科学版)》 EI CAS CSCD 北大核心 2016年第5期90-95,共6页
针对工业机器人在不带负载时的动力学参数辨识问题,提出了一种基于加权最小二乘法与人工蜂群算法(WLS-ABC)的辨识算法.首先计及关节摩擦特性,推导出机器人动力学模型的线性形式;接着设计五阶傅里叶级数作为激励轨迹,采集辨识实验数据;... 针对工业机器人在不带负载时的动力学参数辨识问题,提出了一种基于加权最小二乘法与人工蜂群算法(WLS-ABC)的辨识算法.首先计及关节摩擦特性,推导出机器人动力学模型的线性形式;接着设计五阶傅里叶级数作为激励轨迹,采集辨识实验数据;然后根据文中辨识算法,采用加权最小二乘法得到待辨识参数初始解,并以蜂群为搜索单位,通过群体之间的信息交流与优胜劣汰机制找到全局最优参数;最后对得到的模型进行验证与分析.实验结果表明,通过文中辨识算法得到的预测力矩与测量力矩有较高的匹配度,所建立的模型能够反映机器人的动力学特性. 展开更多
关键词 工业机器人 参数辨识 加权最小二乘法 人工蜂群算法
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基于WLS的OTHR短时自适应海杂波抑制方法 被引量:6
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作者 严韬 陈建文 鲍拯 《华中科技大学学报(自然科学版)》 EI CAS CSCD 北大核心 2017年第8期20-25,共6页
基于高频海杂波的空间相关特性,从自适应滤波的角度提出了一种基于加权最小二乘(WLS)的天波超视距雷达(OTHR)短时自适应海杂波抑制方法.在自适应权值求解过程中,采用基于QR分解的直接数据域处理方法,避免传统基于相关矩阵求逆方法的数... 基于高频海杂波的空间相关特性,从自适应滤波的角度提出了一种基于加权最小二乘(WLS)的天波超视距雷达(OTHR)短时自适应海杂波抑制方法.在自适应权值求解过程中,采用基于QR分解的直接数据域处理方法,避免传统基于相关矩阵求逆方法的数值稳定性较差的缺陷.结果表明:与现有的基于空间相关性的海杂波抑制方法相比,所提方法具有更优的杂波抑制性能,同时兼备对参考距离单元数要求更低、计算量更小、自适应能力更强的优点,工程适用性较强.实测数据处理分析验证了所提方法的有效性. 展开更多
关键词 天波超视距雷达 加权最小二乘 海杂波抑制 相干积累时间 相关性
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基于WLS-SVM回归模型的电力负荷预测 被引量:10
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作者 王晓红 吴德会 《微计算机信息》 北大核心 2008年第4期312-314,共3页
针对电力系统年用电量增长的特点,提出一种基于加权最小二乘支持向量机(LS-SVM)的电力负荷预测模型。与标准LS-SVM的电力预测方法比较,该模型能通过设置训练样本权重比例,实现样本优化选择,达到历史数据"重近轻远"的学习效果... 针对电力系统年用电量增长的特点,提出一种基于加权最小二乘支持向量机(LS-SVM)的电力负荷预测模型。与标准LS-SVM的电力预测方法比较,该模型能通过设置训练样本权重比例,实现样本优化选择,达到历史数据"重近轻远"的学习效果,从而能有效提高预测精度。通过具体实例验证,WLS-SVM模型预测精度明显优于标准LS-SVM模型,说明本文模型实现容易,鲁棒性好,预测精度高。 展开更多
关键词 加权最小二乘支持向量机 回归 电力负荷 预测
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基于WLS-SVM的加速度计动态模型参数辩识 被引量:1
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作者 王建林 郭永奇 +2 位作者 魏青轩 孙桥 胡红波 《振动与冲击》 EI CSCD 北大核心 2018年第19期239-244,253,共7页
提高加速度计动态模型参数辨识精度,对研究和改善加速度计动态特性有重要作用。针对加速度计的非线性影响其动态模型参数辨识精度的问题,提出了一种基于加权最小二乘(WLS)和支持向量机(SVM)的加速度计动态模型参数辩识方法,该方法针对... 提高加速度计动态模型参数辨识精度,对研究和改善加速度计动态特性有重要作用。针对加速度计的非线性影响其动态模型参数辨识精度的问题,提出了一种基于加权最小二乘(WLS)和支持向量机(SVM)的加速度计动态模型参数辩识方法,该方法针对包含线性部分和非线性项的加速度计二阶非线性动态模型,利用WLS辩识加速度计动态模型的线性部分参数,并采用SVM估计加速度计动态模型的非线性特性,通过迭代和最小化所构建的误差准则函数,实现加速度计动态模型参数最优辨识。仿真实验和加速度计绝对法冲击激励校准实验表明,该方法能够减小加速度计非线性对动态模型参数辩识精度的影响,所得加速度计动态模型参数辨识结果具有较高的精度。 展开更多
关键词 加速度计 非线性动态模型 支持向量机 加权最小二乘 参数辩识
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基于WLS-SVM标准差σ预测的产品过程质量控制方法研究 被引量:8
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作者 孙林 《合肥工业大学学报(自然科学版)》 CAS CSCD 北大核心 2013年第2期231-235,共5页
及时、准确地预测加工过程产品质量标准差σ,对于及时判断工序状态、调整加工过程因素,进而提高产品过程质量等具有重要意义。文章提出了一种基于加权最小二乘支持向量机(WLS-SVM)的时间序列预测新方法,该方法采用了结构风险最小化原则... 及时、准确地预测加工过程产品质量标准差σ,对于及时判断工序状态、调整加工过程因素,进而提高产品过程质量等具有重要意义。文章提出了一种基于加权最小二乘支持向量机(WLS-SVM)的时间序列预测新方法,该方法采用了结构风险最小化原则,较好地避免了人工神经网络等智能方法在小样本学习、预测过程中存在的过学习、泛化能力弱等缺点;并采用"重近轻远"的权重设置原则,提高了预测的精度。实验表明,采用该方法对产品过程质量标准差σ进行预测切实可行,对于产品过程质量控制具有重要意义。 展开更多
关键词 标准差σ 加权最小二乘支持向量机 过程质量 预测
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基于WPA与WLS-SVM方法的化工过程故障诊断 被引量:1
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作者 许贺楠 添玉 +1 位作者 肖娟 黄道 《控制工程》 CSCD 北大核心 2010年第S2期193-197,共5页
化工过程存在变量多,系统复杂,非线性等特点,这使得常规的故障诊断方法具有模型难以建立、参数难以调整、收敛速度慢、多故障无法正确识别等局限性。以标准化模型TE过程为实验平台,结合模型特点以及在故障诊断中的难点,采用小波包算法(W... 化工过程存在变量多,系统复杂,非线性等特点,这使得常规的故障诊断方法具有模型难以建立、参数难以调整、收敛速度慢、多故障无法正确识别等局限性。以标准化模型TE过程为实验平台,结合模型特点以及在故障诊断中的难点,采用小波包算法(WPA)滤除过程数据噪声,恢复原始信号,数据缩放统一数据量度,最小二乘支持向量机(WLS-SVM)为模型,K聚类方法确定权值系数,交叉验证来选择模型参数,提出了一系列具体的解决方案。通过仿真实验,验证了算法的有效性,以及在过程故障诊断中的可行性,并在最后提出了一些展望。 展开更多
关键词 故障诊断 TE过程 小波包分析 数据缩放 最小二乘加权支持向量机 K聚类
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基于误差因子的改进WLS超宽带定位算法 被引量:2
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作者 刘林 宋雨昊 《东北大学学报(自然科学版)》 EI CAS CSCD 北大核心 2024年第9期1235-1243,1316,共10页
为提高非视距场景下超宽带(ultra‑wideband,UWB)定位精度,本文提出一种基于误差因子的改进加权最小二乘(weighted least square,WLS)算法.该算法利用测距值和实时信道冲激响应特征训练1维卷积神经网络,实现误差因子的准确预测;基于预测... 为提高非视距场景下超宽带(ultra‑wideband,UWB)定位精度,本文提出一种基于误差因子的改进加权最小二乘(weighted least square,WLS)算法.该算法利用测距值和实时信道冲激响应特征训练1维卷积神经网络,实现误差因子的准确预测;基于预测得到的误差因子设计改进WLS算法的加权矩阵,赋予不同基站合理的权重,以改善非视距场景下UWB定位性能.通过实测采集静态和动态定位数据对改进WLS算法进行性能验证.实验结果表明:视距场景下,改进WLS算法与最小二乘(least square,LS)算法、WLS算法定位性能相近;非视距场景下,改进WLS算法明显优于LS算法、WLS算法,能够有效抑制非视距误差. 展开更多
关键词 超宽带 到达时间 非视距 1维卷积神经网络 改进加权最小二乘算法
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