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Adaptive Subspace Predictive Control with Time-varying Forgetting Factor 被引量:3
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作者 Li Zhang Shan-Zhi Xu Hong-Tao Zhao 《International Journal of Automation and computing》 EI CSCD 2014年第2期205-209,共5页
Aiming at the time-varying characteristics of industrial process, this paper introduces an adaptive subspace predictive control(ASPC) strategy with time-varying forgetting factor based on the original subspace predict... Aiming at the time-varying characteristics of industrial process, this paper introduces an adaptive subspace predictive control(ASPC) strategy with time-varying forgetting factor based on the original subspace predictive control algorithm(SPC). The new method uses model matching error to calculate the variable forgetting factor, and applies it to constructing Hankel data matrix.This makes the data represent the changes of system information better. For eliminating the steady state error, the derivation of the incremental control is made. Simulation results on a rotary kiln show that this control strategy has achieved a good control effect. 展开更多
关键词 Subspace predictive control time-varying forgetting factor model matching error ADAPTIVE rotary kiln.
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Coupled dynamics of information diffusion and disease transmission considering vaccination and time-varying forgetting probability
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作者 Lai-Jun Zhao Lu-Ping Chen +2 位作者 Ping-Le Yang Fan-Yuan Meng Chen Dong 《Chinese Physics B》 2025年第11期551-566,共16页
Vaccination is critical for controlling infectious diseases,but negative vaccination information can lead to vaccine hesitancy.To study how the interplay between information diffusion and disease transmission impacts ... Vaccination is critical for controlling infectious diseases,but negative vaccination information can lead to vaccine hesitancy.To study how the interplay between information diffusion and disease transmission impacts vaccination and epidemic spread,we propose a novel two-layer multiplex network model that integrates an unaware-acceptant-negative-unaware(UANU)information diffusion model with a susceptible-vaccinated-exposed-infected-susceptible(SVEIS)epidemiological framework.This model includes individual exposure and vaccination statuses,time-varying forgetting probabilities,and information conversion thresholds.Through the microscopic Markov chain approach(MMCA),we derive dynamic transition equations and the epidemic threshold expression,validated by Monte Carlo simulations.Using MMCA equations,we predict vaccination densities and analyze parameter effects on vaccination,disease transmission,and the epidemic threshold.Our findings suggest that promoting positive information,curbing the spread of negative information,enhancing vaccine effectiveness,and promptly identifying asymptomatic carriers can significantly increase vaccination rates,reduce epidemic spread,and raise the epidemic threshold. 展开更多
关键词 information diffusion epidemic spreading vaccine immunization time-varying forgetting probability
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RLS channel estimation with adaptive forgetting factor in space-time coded MIMO-OFDM systems 被引量:2
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作者 LIANG Yong-ming LUO Han-wen HUANG Jian-guo 《Journal of Zhejiang University-Science A(Applied Physics & Engineering)》 SCIE EI CAS CSCD 2006年第4期507-515,共9页
Considering that channel estimation plays a crucial role in coherent detection, this paper addresses a method of Recursive-least-squares (RLS) channel estimation with adaptive forgetting factor in wireless space-time ... Considering that channel estimation plays a crucial role in coherent detection, this paper addresses a method of Recursive-least-squares (RLS) channel estimation with adaptive forgetting factor in wireless space-time coded multiple-input and multiple-output orthogonal frequency division multiplexing (MIMO-OFDM) systems. Because there are three different forgetting factor scenarios including adaptive, two-step and conventional ones applied to RLS channel estimation, this paper describes the principle of RLS channel estimation and analyzes the impact of different forgetting factor scenarios on the performances of RLS channel estimation. Simulation results proved that the RLS algorithm with adaptive forgetting factor (RLS-A) outperformed that with two-step forgetting factor (RLS-T) or with conventional forgetting factor (RLS-C) in both estimation accuracy and robustness over the multiple-input multiple-output (MIMO) channel, i.e., a wide-sense stationary uncorrelated scattering (WSSUS) and frequency-selective slowly fading channel. Hence, we can employ the RLS-A method by adjusting forgetting factor adaptively to track and estimate channel state parameters successfully in space-time coded MIMO-OFDM systems. 展开更多
关键词 MIMO-OFDM Channel estimation RLS algorithm Adaptive forgetting factor
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Autonomous navigation method of satellite constellation based on adaptive forgetting factors 被引量:1
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作者 Dong WANG Jing YANG Kai XIONG 《Chinese Journal of Aeronautics》 SCIE EI CAS CSCD 2024年第7期317-332,共16页
To address the problem that model uncertainty and unknown time-varying system noise hinder the filtering accuracy of the autonomous navigation system of satellite constellation,an autonomous navigation method of satel... To address the problem that model uncertainty and unknown time-varying system noise hinder the filtering accuracy of the autonomous navigation system of satellite constellation,an autonomous navigation method of satellite constellation based on the Unscented Kalman Filter with Adaptive Forgetting Factors(UKF-AFF)is proposed.The process noise covariance matrix is estimated online with the strategy that combines covariance matching and adaptive adjustment of forgetting factors.The adaptive adjustment coefficient based on squared Mahalanobis distance of state residual is employed to achieve online regulation of forgetting factors,equipping this method with more adaptability.The intersatellite direction vector obtained from photographic observations is introduced to determine the constellation satellite orbit together with the distance measurement to avoid rank deficiency issues.Considering that the number of available measurements varies online with intersatellite visibility in practical applications such as time-varying constellation configurations,the smooth covariance matrix of state correction determined by innovation and gain is adopted and constructed recursively.Stability analysis of the proposed method is also conducted.The effectiveness of the proposed method is verified by the Monte Carlo simulation and comparison experiments.The estimation accuracy of constellation position and velocity of UKF-AFF is improved by 30%and 44%respectively compared to those of the extended Kalman filter,and the method proposed is also better than other several adaptive filtering methods in the presence of significant model uncertainty. 展开更多
关键词 Constellation autonomous navigation Unscented Kalman filter Adaptive forgetting factor Model uncertainty Stability analysis
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Improved Variable Forgetting Factor Proportionate RLS Algorithm with Sparse Penalty and Fast Implementation Using DCD Iterations
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作者 Han Zhen Zhang Fengrui +2 位作者 Zhang Yu Han Yanfeng Jiang Peng 《China Communications》 SCIE CSCD 2024年第10期16-27,共12页
The proportionate recursive least squares(PRLS)algorithm has shown faster convergence and better performance than both proportionate updating(PU)mechanism based least mean squares(LMS)algorithms and RLS algorithms wit... The proportionate recursive least squares(PRLS)algorithm has shown faster convergence and better performance than both proportionate updating(PU)mechanism based least mean squares(LMS)algorithms and RLS algorithms with a sparse regularization term.In this paper,we propose a variable forgetting factor(VFF)PRLS algorithm with a sparse penalty,e.g.,l_(1)-norm,for sparse identification.To reduce the computation complexity of the proposed algorithm,a fast implementation method based on dichotomous coordinate descent(DCD)algorithm is also derived.Simulation results indicate superior performance of the proposed algorithm. 展开更多
关键词 dichotomous coordinate descent proportionate matrix RLS sparse systems variable forgetting factor
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Non-uniform thermal behavior of single-layer spherical reticulated shell structures considering time-variant environmental factors: analysis and design 被引量:1
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作者 Wucheng XU Xiaoqing ZHENG +2 位作者 Xuanhe ZHANG Zhejie LAI Yanbin SHEN 《Journal of Zhejiang University-Science A(Applied Physics & Engineering)》 SCIE EI CAS CSCD 2024年第3期223-237,共15页
Contrary to conventional design methods that assume uniform and slow temperature changes tied to atmospheric conditions,single-layer spherical reticulated shells undergo significant non-uniform and time-variant temper... Contrary to conventional design methods that assume uniform and slow temperature changes tied to atmospheric conditions,single-layer spherical reticulated shells undergo significant non-uniform and time-variant temperature variations due to dynamic environmental coupling.These differences can affect structural performance and pose safety risks.Here,a systematic numerical method was developed and applied to simulate long-term temperature variations in such a structure under real environmental conditions,revealing its non-uniform distribution characteristics and time-variant regularity.A simplified design method for non-uniform thermal loads,accounting for time-variant environmental factors,was theoretically derived and validated through experiments and simulations.The maximum deviation and mean error rate between calculated and tested results were 6.1℃ and 3.7%,respectively.Calculated temperature fields aligned with simulated ones,with deviations under 6.0℃.Using the design method,non-uniform thermal effects of the structure are analyzed.Maximum member stress and nodal displacement under non-uniform thermal loads reached 119.3 MPa and 19.7 mm,representing increases of 167.5%and 169.9%,respectively,compared to uniform thermal loads.The impacts of healing construction time on non-uniform thermal effects were evaluated,resulting in construction recommendations.The methodologies and conclusions presented here can serve as valuable references for the thermal design,construction,and control of single-layer spherical reticulated shells or similar structures. 展开更多
关键词 Non-uniform temperature field Non-uniform thermal load Non-uniform thermal effect Single-layer spherical reticulated shell Time-variant environmental factor
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Dynamic Characteristics of Double-Helical Planetary Gear Sets Under Time-Varying Mesh Stiffness 被引量:3
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作者 He Lin Sanmin Wang +2 位作者 Earl HDowell Jincheng Dong Cong Ma 《Journal of Harbin Institute of Technology(New Series)》 EI CAS 2016年第4期44-51,共8页
Internal and external meshes are two of primary excitation sources which induce vibration while double-helical planetary gear sets are in transmission. Based on the analysis of tooth movement principle,three cases of ... Internal and external meshes are two of primary excitation sources which induce vibration while double-helical planetary gear sets are in transmission. Based on the analysis of tooth movement principle,three cases of mesh stiffness are derived via investigating the length of action lines,and catalogued in terms of β < β0,β = β0and β > β_0. The simulation demonstrates mesh stiffness between gear pairs performs as a trapezoid waveform( TW) and changes along with the line of action simultaneously,total mesh stiffness comes from the superposition of each engaged gear. While governing equations of motion contained 16 DOFs( degree of freedom) are constructed and effectively solved through the combination of numerical approaches. Comparing with sinusoidal waveform mesh stiffness( SW),the results show that dynamical factors and perturbation under the excitation of TW( β < β_0) are greater and remarkable than that from SW,with respect to the mean dynamic factors about 1. 51 and 1. 28,respectively. The fluctuation response between ring- planet( R- P) is stronger than sun-planet( S-P) which is also validated by both approach studies,frequency spectra analyses identifies larger distinct rotational resonance and more frequencies under TW excitation. 展开更多
关键词 time-varying mesh stiffness TRAPEZOID WAVEFORM mean DYNAMICAL factors frequency spectra
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Identification of time-varying system and energy-based optimization of adaptive control in seismically excited structure
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作者 Elham Aghabarari Fereidoun Amini Pedram Ghaderi 《Earthquake Engineering and Engineering Vibration》 SCIE EI CSCD 2024年第1期227-240,共14页
The combination of structural health monitoring and vibration control is of great importance to provide components of smart structures.While synthetic algorithms have been proposed,adaptive control that is compatible ... The combination of structural health monitoring and vibration control is of great importance to provide components of smart structures.While synthetic algorithms have been proposed,adaptive control that is compatible with changing conditions still needs to be used,and time-varying systems are required to be simultaneously estimated with the application of adaptive control.In this research,the identification of structural time-varying dynamic characteristics and optimized simple adaptive control are integrated.First,reduced variations of physical parameters are estimated online using the multiple forgetting factor recursive least squares(MFRLS)method.Then,the energy from the structural vibration is simultaneously specified to optimize the control force with the identified parameters to be operational.Optimization is also performed based on the probability density function of the energy under the seismic excitation at any time.Finally,the optimal control force is obtained by the simple adaptive control(SAC)algorithm and energy coefficient.A numerical example and benchmark structure are employed to investigate the efficiency of the proposed approach.The simulation results revealed the effectiveness of the integrated online identification and optimal adaptive control in systems. 展开更多
关键词 integrated online identification time-varying systems structural energy multiple forgetting factor recursive least squares optimal simple adaptive control algorithm
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基于FFRLS-MIUKF算法的全钒液流电池荷电状态估计方法
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作者 郑涛 贾泽峰 +2 位作者 邱亚 李俊伟 侯谋 《热力发电》 北大核心 2025年第4期68-76,共9页
针对全钒液流电池的荷电状态(state of charge,SOC)估计难度大、成本高、准确性差等问题,提出一种基于带遗忘因子的递推最小二乘法(forgetting factor recursive least squares,FFRLS)和多新息无迹卡尔曼滤波(multiple innovation unsce... 针对全钒液流电池的荷电状态(state of charge,SOC)估计难度大、成本高、准确性差等问题,提出一种基于带遗忘因子的递推最小二乘法(forgetting factor recursive least squares,FFRLS)和多新息无迹卡尔曼滤波(multiple innovation unscented Kalman filter,MIUKF)的全钒液流电池荷电状态估计方法。该方法通过FFRLS在线辨识全钒液流电池等效电路模型参数,然后通过MIUKF进行荷电状态估计,从而达到准确估计全钒液流电池荷电状态的目的。最后,利用实验平台对5 kW/30 kW·h的全钒液流电池采用所提出方法进行验证,实验结果表明,相较于RLS-UKF算法和FFRLS-UKF算法,FFRLS-MIUKF算法在荷电状态估计中表现最优,其充电阶段与放电阶段均方误差与均方根误差更低,均方误差与均方根误差在充电阶段分别为0.0037、0.0609,在放电阶段分别为0.0013、0.0363。 展开更多
关键词 全钒液流电池 SOC估计 递推最小二乘 多新息无迹卡尔曼滤波 遗忘因子
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基于IFFRLS-IMMUKF的商用车磷酸铁锂电池SOC估算
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作者 吴华伟 何成泽 +3 位作者 洪强 周小高 李明金 顾亚娟 《储能科学与技术》 北大核心 2025年第10期3996-4008,共13页
荷电状态(SOC)作为电动汽车剩余容量的表征参数,它的准确预估可以保障电动汽车的安全可靠性。针对复杂环境下电池SOC难以精确估算的问题,本工作基于动力电池特性构建了等效电路模型,并对电池模型状态方程进行了离散化的推演,在获得离散... 荷电状态(SOC)作为电动汽车剩余容量的表征参数,它的准确预估可以保障电动汽车的安全可靠性。针对复杂环境下电池SOC难以精确估算的问题,本工作基于动力电池特性构建了等效电路模型,并对电池模型状态方程进行了离散化的推演,在获得离散化状态方程的基础上,将金豺优化算法与遗忘因子递推最小二乘法(FFRLS)相结合提出了改进遗忘递推最小二乘法对电池模型进行了参数辨识。同时,联合交互式多模型无迹卡尔曼滤波(IMMUKF)算法对电池SOC进行估算,并在对常温和高温条件下的动态应力(DST)和联邦城市驾驶工况(FUDS)进行试验验证。结果表明,基于IFFRLS-IMMUKF的锂电池SOC估算方法,其平均绝对值误差在0.8%之内,对磷酸铁锂电池有较高的SOC估算精度。 展开更多
关键词 金豺优化算法 遗忘因子递推最小二乘法 交互式多模型无迹卡尔曼滤波 荷电状态
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变区间最优带遗忘因子迭代学习控制算法
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作者 戴宝林 罗雨霜 厚亚飞 《机床与液压》 北大核心 2025年第13期112-117,共6页
针对传统时变遗忘因子迭代学习控制(ILCFF)算法中遗忘因子需依靠经验确定且缺乏取值依据等问题,提出一种基于最优控制增益与可变修正区间的最优ILCFF算法。该算法在已有最优ILCFF算法基础上,引入矩阵范数构建涵盖迭代轴和时间轴的遗忘... 针对传统时变遗忘因子迭代学习控制(ILCFF)算法中遗忘因子需依靠经验确定且缺乏取值依据等问题,提出一种基于最优控制增益与可变修正区间的最优ILCFF算法。该算法在已有最优ILCFF算法基础上,引入矩阵范数构建涵盖迭代轴和时间轴的遗忘因子二维修正区间,通过在该区间单独设置遗忘因子值,实现局部干扰抑制。该算法突破了传统时变遗忘因子必须在多次迭代后趋近于1的设计思路,理论推导证明了算法收敛性,并给出了算法收敛条件。同时,证明了系统输出跟踪误差趋于稳定后,局部增大遗忘因子可以进一步减小系统输出跟踪误差。该算法结构简单,计算量小,在保证系统收敛速度的同时进一步减小了系统输出跟踪误差,抑制系统干扰效果较好。最后,通过仿真验证了算法的有效性。 展开更多
关键词 迭代学习控制 最优控制增益 可变修正区间 遗忘因子
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基于云端数据充电初期片段的电池极化参数辨识
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作者 王丽梅 崔艳伟 +3 位作者 孙景景 赵秀亮 刘良 盘朝奉 《汽车安全与节能学报》 北大核心 2025年第2期294-302,共9页
为了提高电池极化参数在线辨识的精度及速度,提出了一种基于云端数据的基准极化参数辨识方法。通过开展电池充放脉冲实验,研究电池极化参数特性;基于云端数据充电初期片段,采用类比混合脉冲功率性能(HPPC)方法,获取充电极化参数;以充电... 为了提高电池极化参数在线辨识的精度及速度,提出了一种基于云端数据的基准极化参数辨识方法。通过开展电池充放脉冲实验,研究电池极化参数特性;基于云端数据充电初期片段,采用类比混合脉冲功率性能(HPPC)方法,获取充电极化参数;以充电极化参数为约束,利用变遗忘因子递推最小二乘法(VFFRLS),计算了放电极化参数。结果表明:本文方法的电池时间常数范围为34~53 s,在云端相应小电流倍率下极化参数不随倍率变化;充电极化内阻和极化电容的计算结果与实验结果吻合;添加约束后的在线辨识方法的收敛速度,与未添加约束相比,最少提高了6%。 展开更多
关键词 电池充电放电 极化参数 云端数据 离线辨识 类比混合脉冲功率性能(HPPC)法 变遗忘因子递推最小二乘法(VFFRLS)
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地铁外界坡道补偿模型及其模糊广义预测控制
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作者 郭红戈 薛志飞 张春美 《太原科技大学学报》 2025年第2期133-138,共6页
通过分析地铁控制指令的流向及列车的工作过程,提出了地铁牵引和制动工况下基于坡道补偿的统一控制模型。为了提高列车模型参数辨识的收敛速度,根据预测误差动态调整遗忘因子,提出了可变遗忘因子的最小二乘参数辨识方法。根据北京亦庄... 通过分析地铁控制指令的流向及列车的工作过程,提出了地铁牵引和制动工况下基于坡道补偿的统一控制模型。为了提高列车模型参数辨识的收敛速度,根据预测误差动态调整遗忘因子,提出了可变遗忘因子的最小二乘参数辨识方法。根据北京亦庄地铁线实测数据,采用带动态遗忘因子的最小二乘参数辨识方法得到牵引和制动工况下地铁控制模型的参数。针对列车在运行过程中受到外界环境干扰的现象,尤其坡道现象,用模糊控制作为广义预测控制器的误差补偿器,在列车牵引和惰行工况下采用牵引模型实现速度精确跟踪,在列车制动工况下采用制动模型实现精准停车,兼顾了地铁列车控制系统的速度跟踪及精准停车性能。以北京地铁亦庄线为仿真研究对象,验证了地铁模型的准确性和控制器的有效性。 展开更多
关键词 地铁列车 带遗忘因子最小二乘法 模糊广义预测控制 外界坡道补偿模型
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基于AFFRLS-MIAUKF算法的锂离子电池SOC估算
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作者 王君瑞 李进 +1 位作者 季长江 谭露 《现代电子技术》 北大核心 2025年第10期7-14,共8页
在锂离子电池荷电状态(SOC)估算过程中,建立合适的模型是第一步,模型中参数的辨识精度对估算SOC至关重要。为提高锂离子电池SOC的估算精度,提出一种基于自适应遗忘因子递推最小二乘(AFFRLS)与多新息自适应无迹卡尔曼滤波(MIAUKF)相结合... 在锂离子电池荷电状态(SOC)估算过程中,建立合适的模型是第一步,模型中参数的辨识精度对估算SOC至关重要。为提高锂离子电池SOC的估算精度,提出一种基于自适应遗忘因子递推最小二乘(AFFRLS)与多新息自适应无迹卡尔曼滤波(MIAUKF)相结合的算法来估算电池SOC。以三元锂电池为实验对象,建立二阶RC等效电路模型,采用离线辨识和自适应遗忘因子递推最小二乘两种方法实现模型参数的辨识。在复合脉冲功率特性实验(HPPC)工况下,使用AFFRLS-MIAUKF算法对锂离子电池SOC进行估算,并与离线辨识MIAUKF算法和UKF算法相对比。实验结果表明,AFFRLS-MIAUKF算法具有更高的精度,平均误差能保持在0.5%以内。 展开更多
关键词 锂离子电池 电池荷电状态估算 无迹卡尔曼滤波 自适应遗忘因子递推最小二乘 多新息理论 等效电路模型
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基于AFFRLS-AUKF的多工况下锂离子电池SOC估计
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作者 郑大宇 高煜琨 +1 位作者 董静 张学明 《哈尔滨商业大学学报(自然科学版)》 2025年第3期336-345,共10页
锂离子电池的荷电状态估计(SOC)是电池管理系统(BMS)的关键指标,准确的SOC预测是锂电池安全工作的关键保证.针对由电池模型的参数固定而导致模型参数辨识准确性不够以及传统无迹卡尔曼滤波精度较低、稳定性差等问题,运用自适应遗忘因子... 锂离子电池的荷电状态估计(SOC)是电池管理系统(BMS)的关键指标,准确的SOC预测是锂电池安全工作的关键保证.针对由电池模型的参数固定而导致模型参数辨识准确性不够以及传统无迹卡尔曼滤波精度较低、稳定性差等问题,运用自适应遗忘因子递推最小二乘算法(AFFRLS)对二阶RC等效电路模型进行在线参数辨识,结合自适应无迹卡尔曼滤波算法(AUKF)联合估计电池荷电状态.实验结果表明,AFFRLS-AUKF联合算法能够自适应多个工况下的SOC估计,在DST工况下SOC的平均误差降低至0.0035;在FUDS工况下SOC的平均误差降低至0.0110、在US06工况下SOC的平均误差降低至0.0011、在BJDS工况下SOC的平均误差降低至0.0077.该算法解决了在多个工况下锂电池因参数时变而导致的估计精度较低的问题,为锂离子电池的使用寿命和管理系统的运行效率提供了保障. 展开更多
关键词 SOC 锂离子电池 参数辨识 自适应遗忘因子递推最小二乘(AFFRLS)法 自适应无迹卡尔曼滤波(AUKF) 多工况
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不同温度下锂离子电池自适应多状态联合估计 被引量:2
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作者 王中伟 杨坤 +2 位作者 马超 王记磊 王杰 《汽车技术》 北大核心 2025年第4期20-31,共12页
为了准确估计不同温度下电池参数、荷电状态及功率状态,提出基于自适应遗忘因子的递推最小二乘法联合自适应扩展卡尔曼滤波算法。通过实时校正、更新参数,提升电池参数辨识和荷电状态估计的精度;以模型端电压辨识结果、荷电状态估计结... 为了准确估计不同温度下电池参数、荷电状态及功率状态,提出基于自适应遗忘因子的递推最小二乘法联合自适应扩展卡尔曼滤波算法。通过实时校正、更新参数,提升电池参数辨识和荷电状态估计的精度;以模型端电压辨识结果、荷电状态估计结果及电池最大放电电流为约束,实现电池功率状态联合估计。试验结果表明:动态应力测试工况下,辨识电压最大绝对误差和荷电状态最大绝对误差结果分别为62.699 mV和1.894%;当持续放电时间为5 s、30 s和120 s时,电池功率的平均误差分别为5.6×10^(-3) W、6.5×10^(-3) W及8.0×10^(-3) W,所提出的自适应联合估计算法可有效提高参数辨识和状态估计的精度。 展开更多
关键词 锂离子电池 自适应遗忘因子递推最小二乘法 自适应扩展卡尔曼滤波 在线参数辨识 联合估计
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双有源桥变换器自适应参数辨识鲁棒预测控制 被引量:1
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作者 尹政 邓富金 +1 位作者 黄堃 詹昕 《电机与控制学报》 北大核心 2025年第2期74-84,95,共12页
针对双有源桥(DAB)变换器传统模型预测控制(MPC)输出电压性能对系统参数变化较为敏感的问题,提出一种基于自适应参数辨识的DAB变换器鲁棒预测控制方法。本研究采用递归最小二乘法构建参数辨识矩阵,通过在线实时校正DAB系统的电感与电容... 针对双有源桥(DAB)变换器传统模型预测控制(MPC)输出电压性能对系统参数变化较为敏感的问题,提出一种基于自适应参数辨识的DAB变换器鲁棒预测控制方法。本研究采用递归最小二乘法构建参数辨识矩阵,通过在线实时校正DAB系统的电感与电容动态参数,有效增强了MPC在变工况下的鲁棒特性;通过参数误差反馈及门槛值设置,在每个控制周期中根据误差大小自适应调整遗忘因子,提高参数辨识准确性及收敛速度;结合系统采样和参数辨识结果,实现未来时刻的电压预测,并通过价值函数评估最优移相角,应用在下一个控制周期。该方法可以实时辨识DAB系统电感和电容参数,消除了参数失配对预测控制的影响,保证了输出电压性能。最后,通过仿真和硬件实验平台验证了所提方法在稳态、动态以及参数辨识下的运行性能。 展开更多
关键词 双有源桥变换器 模型预测控制 参数辨识 递归最小二乘法 自适应遗忘因子 鲁棒性
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频域多径效应下光纤通信网络信号自适应干扰抑制 被引量:2
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作者 冯彩英 王晓惠 王彩峰 《激光杂志》 北大核心 2025年第5期184-188,共5页
光纤中的色散效应会导致不同频率的光信号以不同的速度传播,在这种频域多径效应下,通信信号的幅度和相位发生波动,出现码间干扰,从而引起信号的展宽和失真,降低了通信信号的质量。为此,提出频域多径效应下光纤通信网络信号自适应干扰抑... 光纤中的色散效应会导致不同频率的光信号以不同的速度传播,在这种频域多径效应下,通信信号的幅度和相位发生波动,出现码间干扰,从而引起信号的展宽和失真,降低了通信信号的质量。为此,提出频域多径效应下光纤通信网络信号自适应干扰抑制研究。根据滤波器抽头系数,计算判决反馈均衡器输出光纤通信信号均衡处理结果的误差,将其作为冲激响应和时间偏移函数的输入,并引入傅里叶变换,设置无码间干扰条件,采用判决反馈均衡器来补偿信道冲激响应,使得整个光纤通信网络的频谱趋于相对平坦,有效抵消由于色散效应和码间干扰引起的信号失真,采用递归最小二乘法自适应调整滤波器抽头系数,获取均衡器最佳系数,从而有效抑制光纤通信网络的频域多径效应下的码间干扰。实验结果表明,所提方法干扰抑制能力强,可有效提升通信信号质量。 展开更多
关键词 频域多径效应 光纤通信网络 通信信号 码间干扰 遗忘因子
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六旋翼无人机航磁补偿方法研究
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作者 于龙兴 魏媛媛 +2 位作者 付世沫 常青 王耀力 《电光与控制》 北大核心 2025年第2期38-44,共7页
地磁导航作为一种无源自主导航方法,与全球定位系统(GPS)相比具有更强的稳定性。为了提高无人机(UAV)平台地磁导航的精确性,需要补偿无人机平台产生的固定干扰、涡流干扰、感应干扰。根据实测六旋翼无人机磁场数据,分析出无人机作业时... 地磁导航作为一种无源自主导航方法,与全球定位系统(GPS)相比具有更强的稳定性。为了提高无人机(UAV)平台地磁导航的精确性,需要补偿无人机平台产生的固定干扰、涡流干扰、感应干扰。根据实测六旋翼无人机磁场数据,分析出无人机作业时干扰信号的频率特性;结合传统的Tolles-Lawson模型与卡尔曼滤波算法预测地磁场的变化,去除了传统Tolles-Lawson模型中恒定地磁场的假设;引入遗忘因子α,根据残差理论减小观测协方差误差与状态协方差误差来实现噪声预测,改进卡尔曼滤波。经过实验分析可得,改进自适应卡尔曼滤波有效地降低了补偿误差,较普通卡尔曼滤波补偿效果改善比(IR)提高了5.64,且补偿后磁场数据的噪声毛刺明显减少。 展开更多
关键词 无人机 Tolles-Lawson模型 遗忘因子 自适应卡尔曼滤波
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基于FF-SVDUKF的DDEV路面附着系数识别研究
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作者 赵新 史立伟 +2 位作者 陆海峰 高守林 张博勋 《重庆理工大学学报(自然科学)》 北大核心 2025年第7期75-85,共11页
分布式驱动电动汽车(DDEV)各车轮转矩独立可控,具有良好的车辆底盘动力学控制潜力,而准确识别路面附着系数是车辆动力学控制的基础。为进一步提升传统无迹卡尔曼滤波(UKF)路面附着系数观测算法的精度和收敛速度,提出了一种基于遗忘因子... 分布式驱动电动汽车(DDEV)各车轮转矩独立可控,具有良好的车辆底盘动力学控制潜力,而准确识别路面附着系数是车辆动力学控制的基础。为进一步提升传统无迹卡尔曼滤波(UKF)路面附着系数观测算法的精度和收敛速度,提出了一种基于遗忘因子的奇异值分解无迹卡尔曼滤波(FF-SVDUKF)路面附着系数估计方法。该方法首先利用奇异值分解(SVD)代替乔列斯基分解(Cholesky),在无迹变换中基于奇异值分解计算采样点,以避免传统无迹卡尔曼滤波协方差矩阵非正定性引起的滤波不稳定现象。然后引入变形的遗忘因子,对观测噪声协方差矩阵进行实时动态调整,改变了历史数据权重,提升了算法对时变路面附着系数的适应能力。构建Matlab/Simulink和Carsim联合仿真平台对算法进行仿真验证,仿真结果表明:与传统UKF算法相比,FF-SVDUKF算法在多工况路面附着系数估计时,均方根误差平均提高51%,具有良好的整车应用价值。 展开更多
关键词 分布式驱动电动汽车 路面附着系数 无迹卡尔曼滤波 奇异值分解 遗忘因子
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