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Multi-Objective optimization for stable and efficient cargo transportation of partial space elevator
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作者 Gefei Shi Zheng H.Zhu 《Defence Technology(防务技术)》 2025年第2期17-29,共13页
This paper proposed a new libration decoupling analytical speed function(LD-ASF)in lieu of the classic analytical speed function to control the climber's speed along a partial space elevator to improve libration s... This paper proposed a new libration decoupling analytical speed function(LD-ASF)in lieu of the classic analytical speed function to control the climber's speed along a partial space elevator to improve libration stability in cargo transportation.The LD-ASF is further optimized for payload transportation efficiency by a novel coordinate game theory to balance competing control objectives among payload transport speed,stable end body's libration,and overall control input via model predictive control.The transfer period is divided into several sections to reduce computational burden.The validity and efficacy of the proposed LD-ASF and coordinate game-based model predictive control are demonstrated by computer simulation.Numerical results reveal that the optimized LD-ASF results in higher transportation speed,stable end body's libration,lower thrust fuel consumption,and more flexible optimization space than the classic analytical speed function. 展开更多
关键词 Partial space elevator Stable transportation Libration decoupling analytical speed function Coordinate game model predictive control Pareto optimization
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Efficient sampling strategy driven surrogate-based multi-objective optimization for broadband microwave metamaterial absorbers 被引量:1
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作者 LIU Sixing PEI Changbao +3 位作者 YE Xiaodong WANG Hao WU Fan TAO Shifei 《Journal of Systems Engineering and Electronics》 CSCD 2024年第6期1388-1396,共9页
Multi-objective optimization(MOO)for the microwave metamaterial absorber(MMA)normally adopts evolutionary algo-rithms,and these optimization algorithms require many objec-tive function evaluations.To remedy this issue... Multi-objective optimization(MOO)for the microwave metamaterial absorber(MMA)normally adopts evolutionary algo-rithms,and these optimization algorithms require many objec-tive function evaluations.To remedy this issue,a surrogate-based MOO algorithm is proposed in this paper where Kriging models are employed to approximate objective functions.An efficient sampling strategy is presented to sequentially capture promising samples in the design region for exact evaluations.Firstly,new sample points are generated by the MOO on surro-gate models.Then,new samples are captured by exploiting each objective function.Furthermore,a weighted sum of the improvement of hypervolume(IHV)and the distance to sampled points is calculated to select the new sample.Compared with two well-known MOO algorithms,the proposed algorithm is vali-dated by benchmark problems.In addition,two broadband MMAs are applied to verify the feasibility and efficiency of the proposed algorithm. 展开更多
关键词 multi-objective optimization(MOO) Kriging model microwave metamaterial absorber(MMA) surrogate models sampling strategy
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Multi-objective optimization of rolling schedule based on cost function for tandem cold mill 被引量:4
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作者 陈树宗 张欣 +3 位作者 彭良贵 张殿华 孙杰 刘印忠 《Journal of Central South University》 SCIE EI CAS 2014年第5期1733-1740,共8页
In terms of tandem cold mill productivity and product quality, a multi-objective optimization model of rolling schedule based on cost fimction was proposed to determine the stand reductions, inter-stand tensions and r... In terms of tandem cold mill productivity and product quality, a multi-objective optimization model of rolling schedule based on cost fimction was proposed to determine the stand reductions, inter-stand tensions and rolling speeds for a specified product. The proposed schedule optimization model consists of several single cost fi.mctions, which take rolling force, motor power, inter-stand tension and stand reduction into consideration. The cost function, which can evaluate how far the rolling parameters are from the ideal values, was minimized using the Nelder-Mead simplex method. The proposed rolling schedule optimization method has been applied successfully to the 5-stand tandem cold mill in Tangsteel, and the results from a case study show that the proposed method is superior to those based on empirical formulae. 展开更多
关键词 tandem cold mill multi-object optimization rolling schedule cost function simplex algorithm
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Multi-objective Function Optimization for Environmental Control of a Greenhouse Based on a RBF and NSGA-Ⅱ
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作者 Zhou Xiu-li Liu Ming-wei +3 位作者 Wang Ling Xu Xiao-chuan Chen Gang Wang De-fu 《Journal of Northeast Agricultural University(English Edition)》 CAS 2021年第1期75-89,共15页
To better meet the needs of crop growth and achieve energy savings and efficiency enhancements,constructing a reliable environmental model to optimize greenhouse decision parameters is an important problem to be solve... To better meet the needs of crop growth and achieve energy savings and efficiency enhancements,constructing a reliable environmental model to optimize greenhouse decision parameters is an important problem to be solved.In this work,a radial-basis function(RBF)neural network was used to mine the potential changes of a greenhouse environment,a temperature error model was established,a multi-objective optimization function of energy consumption was constructed and the corresponding decision parameters were optimized by using a non-dominated sorting genetic algorithm with an elite strategy(NSGA-Ⅱ).The simulation results showed that RBF could clarify the nonlinear relationship among the greenhouse environment variables and decision parameters and the greenhouse temperature.The NSGA-Ⅱ could well search for the Pareto solution for the objective functions.The experimental results showed that after 40 min of combined control of sunshades and sprays,the temperature was reduced from 31℃to 25℃,and the power consumption was 0.5 MJ.Compared with tire three days of July 24,July 25 and July 26,2017,the energy consumption of the controlled production greenhouse was reduced by 37.5%,9.1%and 28.5%,respectively. 展开更多
关键词 greenhouse temperature multi-objective optimization radial-basis function(RBF) non-dominated sorting genetic algorithm with an elite strategy(NSGA-Ⅱ)
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Multi-objective optimization for leaching process using improved two-stage guide PSO algorithm 被引量:8
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作者 胡广浩 毛志忠 何大阔 《Journal of Central South University》 SCIE EI CAS 2011年第4期1200-1210,共11页
A mathematical mechanism model was proposed for the description and analysis of the heat-stirring-acid leaching process.The model is proved to be effective by experiment.Afterwards,the leaching problem was formulated ... A mathematical mechanism model was proposed for the description and analysis of the heat-stirring-acid leaching process.The model is proved to be effective by experiment.Afterwards,the leaching problem was formulated as a constrained multi-objective optimization problem based on the mechanism model.A two-stage guide multi-objective particle swarm optimization(TSG-MOPSO) algorithm was proposed to solve this optimization problem,which can accelerate the convergence and guarantee the diversity of pareto-optimal front set as well.Computational experiment was conducted to compare the solution by the proposed algorithm with SIGMA-MOPSO by solving the model and with the manual solution in practice.The results indicate that the proposed algorithm shows better performance than SIGMA-MOPSO,and can improve the current manual solutions significantly.The improvements of production time and economic benefit compared with manual solutions are 10.5% and 7.3%,respectively. 展开更多
关键词 leaching process modelING multi-objective optimization two-stage guide EXPERIMENT
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Overview of multi-objective optimization methods 被引量:2
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作者 LeiXiujuan ShiZhongke 《Journal of Systems Engineering and Electronics》 SCIE EI CSCD 2004年第2期142-146,共5页
To assist readers to have a comprehensive understanding, the classical and intelligent methods roundly based on precursory research achievements are summarized in this paper. First, basic conception and description ab... To assist readers to have a comprehensive understanding, the classical and intelligent methods roundly based on precursory research achievements are summarized in this paper. First, basic conception and description about multi-objective (MO) optimization are introduced. Then some definitions and related terminologies are given. Furthermore several MO optimization methods including classical and current intelligent methods are discussed one by one succinctly. Finally evaluations on advantages and disadvantages about these methods are made at the end of the paper. 展开更多
关键词 multi-objective optimization objective function Pareto optimality genetic algorithms simulated annealing fuzzy logical.
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Multi-objective planning model for simultaneous reconfiguration of power distribution network and allocation of renewable energy resources and capacitors with considering uncertainties 被引量:9
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作者 Sajad Najafi Ravadanegh Mohammad Reza Jannati Oskuee Masoumeh Karimi 《Journal of Central South University》 SCIE EI CAS CSCD 2017年第8期1837-1849,共13页
This research develops a comprehensive method to solve a combinatorial problem consisting of distribution system reconfiguration, capacitor allocation, and renewable energy resources sizing and siting simultaneously a... This research develops a comprehensive method to solve a combinatorial problem consisting of distribution system reconfiguration, capacitor allocation, and renewable energy resources sizing and siting simultaneously and to improve power system's accountability and system performance parameters. Due to finding solution which is closer to realistic characteristics, load forecasting, market price errors and the uncertainties related to the variable output power of wind based DG units are put in consideration. This work employs NSGA-II accompanied by the fuzzy set theory to solve the aforementioned multi-objective problem. The proposed scheme finally leads to a solution with a minimum voltage deviation, a maximum voltage stability, lower amount of pollutant and lower cost. The cost includes the installation costs of new equipment, reconfiguration costs, power loss cost, reliability cost, cost of energy purchased from power market, upgrade costs of lines and operation and maintenance costs of DGs. Therefore, the proposed methodology improves power quality, reliability and security in lower costs besides its preserve, with the operational indices of power distribution networks in acceptable level. To validate the proposed methodology's usefulness, it was applied on the IEEE 33-bus distribution system then the outcomes were compared with initial configuration. 展开更多
关键词 optimal reconfiguration renewable energy resources sitting and sizing capacitor allocation electric distribution system uncertainty modeling scenario based-stochastic programming multi-objective genetic algorithm
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Support vector machine based nonlinear model multi-step-ahead optimizing predictive control 被引量:9
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作者 钟伟民 皮道映 孙优贤 《Journal of Central South University of Technology》 EI 2005年第5期591-595,共5页
A support vector machine with guadratic polynomial kernel function based nonlinear model multi-step-ahead optimizing predictive controller was presented. A support vector machine based predictive model was established... A support vector machine with guadratic polynomial kernel function based nonlinear model multi-step-ahead optimizing predictive controller was presented. A support vector machine based predictive model was established by black-box identification. And a quadratic objective function with receding horizon was selected to obtain the controller output. By solving a nonlinear optimization problem with equality constraint of model output and boundary constraint of controller output using Nelder-Mead simplex direct search method, a sub-optimal control law was achieved in feature space. The effect of the controller was demonstrated on a recognized benchmark problem and a continuous-stirred tank reactor. The simulation results show that the multi-step-ahead predictive controller can be well applied to nonlinear system, with better performance in following reference trajectory and disturbance-rejection. 展开更多
关键词 nonlinear model predictive control support vector machine nonlinear system identification kernel function nonlinear optimization
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Non-dominated sorting quantum particle swarm optimization and its application in cognitive radio spectrum allocation 被引量:4
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作者 GAO Hong-yuan CAO Jin-long 《Journal of Central South University》 SCIE EI CAS 2013年第7期1878-1888,共11页
In order to solve discrete multi-objective optimization problems, a non-dominated sorting quantum particle swarm optimization (NSQPSO) based on non-dominated sorting and quantum particle swarm optimization is proposed... In order to solve discrete multi-objective optimization problems, a non-dominated sorting quantum particle swarm optimization (NSQPSO) based on non-dominated sorting and quantum particle swarm optimization is proposed, and the performance of the NSQPSO is evaluated through five classical benchmark functions. The quantum particle swarm optimization (QPSO) applies the quantum computing theory to particle swarm optimization, and thus has the advantages of both quantum computing theory and particle swarm optimization, so it has a faster convergence rate and a more accurate convergence value. Therefore, QPSO is used as the evolutionary method of the proposed NSQPSO. Also NSQPSO is used to solve cognitive radio spectrum allocation problem. The methods to complete spectrum allocation in previous literature only consider one objective, i.e. network utilization or fairness, but the proposed NSQPSO method, can consider both network utilization and fairness simultaneously through obtaining Pareto front solutions. Cognitive radio systems can select one solution from the Pareto front solutions according to the weight of network reward and fairness. If one weight is unit and the other is zero, then it becomes single objective optimization, so the proposed NSQPSO method has a much wider application range. The experimental research results show that the NSQPS can obtain the same non-dominated solutions as exhaustive search but takes much less time in small dimensions; while in large dimensions, where the problem cannot be solved by exhaustive search, the NSQPSO can still solve the problem, which proves the effectiveness of NSQPSO. 展开更多
关键词 cognitive radio spectrum allocation multi-objective optimization non-dominated sorting quantum particle swarmoptimization benchmark function
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Wind Farm Coordinated Control for Power Optimization 被引量:12
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作者 SHU Jin HAO Zhiguo +1 位作者 ZHANG Baohui BO Zhiqian 《中国电机工程学报》 EI CSCD 北大核心 2011年第34期I0002-I0002,4,共1页
以降低风电场尾流损失、优化风场出力为目标,设计基于Laguerre函数非线性预测控制(nonlinear modelpredictive control,NLMPC)方案的风场集群控制器。该控制器应用风场动态尾流模型,通过NLMPC统一调整风场内各机组转速以提升风场功率... 以降低风电场尾流损失、优化风场出力为目标,设计基于Laguerre函数非线性预测控制(nonlinear modelpredictive control,NLMPC)方案的风场集群控制器。该控制器应用风场动态尾流模型,通过NLMPC统一调整风场内各机组转速以提升风场功率。在控制器设计中,使用有效风速预测误差校正对预测模型失配及超短期风速预测误差进行补偿,引入Laguerre函数降低滚动时域优化计算负担并分析了控制器对风速预测误差的鲁棒性能。仿真研究表明,集群控制器能够在不同风速条件下提升风场功率、降低优化计算负担,且对风速预测模型失配与风场自然风速预测误差具有鲁棒性。 展开更多
关键词 英文摘要 内容介绍 编辑工作 期刊
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Detailed string stability analysis for bi-directional optimal velocity model 被引量:1
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作者 郑亮 《Journal of Central South University》 SCIE EI CAS CSCD 2015年第4期1563-1573,共11页
The class of bi-directional optimal velocity models can describe the bi-directional looking effect that usually exists in the reality and is even enhanced with the development of the connected vehicle technologies. It... The class of bi-directional optimal velocity models can describe the bi-directional looking effect that usually exists in the reality and is even enhanced with the development of the connected vehicle technologies. Its combined string stability condition can be obtained through the method of the ring-road based string stability analysis. However, the partial string stability about traffic fluctuation propagated backward or forward was neglected, which will be analyzed in detail in this work by the method of transfer function and its H∞ norm from the viewpoint of control theory. Then, through comparing the conditions of combined and partial string stabilities, their relationships can make traffic flow be divided into three distinguishable regions, displaying various combined and partial string stability performance. Finally, the numerical experiments verify the theoretical results and find that the final displaying string stability or instability performance results from the accumulated and offset effects of traffic fluctuations propagated from different directions. 展开更多
关键词 traffic flow string stability optimal velocity model linearized stability theory transfer function
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Particle swarm optimization algorithm for simultaneous optimal placement and sizing of shunt active power conditioner(APC)and shunt capacitor in harmonic distorted distribution system
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作者 Mohammadi Mohammad 《Journal of Central South University》 SCIE EI CAS CSCD 2017年第9期2035-2048,共14页
Due to development of distribution systems and increase in electricity demand,the use of capacitor banks increases.From the other point of view,nonlinear loads generate and inject considerable harmonic currents into p... Due to development of distribution systems and increase in electricity demand,the use of capacitor banks increases.From the other point of view,nonlinear loads generate and inject considerable harmonic currents into power system.Under this condition if capacitor banks are not properly selected and placed in the power system,they could amplify and propagate these harmonics and deteriorate power quality to unacceptable levels.With attention of disadvantages of passive filters,such as occurring resonance,nowadays the usage of this type of harmonic compensator is restricted.On the other side,one of parallel multi-function compensating devices which are recently used in distribution system to mitigate voltage sag and harmonic distortion,performs power factor correction,and improves the overall power quality as active power conditioner(APC).Therefore,the utilization of APC in harmonic distorted system can affect and change the optimal location and size of shunt capacitor bank under harmonic distortion condition.This paper presents an optimization algorithm for improvement of power quality using simultaneous optimal placement and sizing of APC and shunt capacitor banks in radial distribution networks in the presence of voltage and current harmonics.The algorithm is based on particle swarm optimization(PSO).The objective function includes the cost of power losses,energy losses and those of the capacitor banks and APCs. 展开更多
关键词 shunt capacitor banks active power conditioner multi-objective function particle swarm optimization (PSO) harmonic distorted distribution system
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基于深度学习算法的湿法冶金资源回收效率提升方法设计及研究
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作者 宋玉安 赵伟 《湿法冶金》 北大核心 2025年第1期125-131,共7页
为进一步提高湿法冶金资源回收率,解决资源回收流程控制的智能化、自动化控制程度不高的问题,提出了一种采用Transformer模型进行金属浸出率预测,再采用Distributional Q-function改进DQN模型进行湿法冶金金浸出率最大化的湿法冶金流程... 为进一步提高湿法冶金资源回收率,解决资源回收流程控制的智能化、自动化控制程度不高的问题,提出了一种采用Transformer模型进行金属浸出率预测,再采用Distributional Q-function改进DQN模型进行湿法冶金金浸出率最大化的湿法冶金流程控制方法。结果表明:该系统控制方法能有效提升湿法冶金过程中金属浸出率的预测准确率;基于Distributional Q-function改进DQN模型能有效降低资源回收率最大化模型的迭代计算时间。该法能有效提高某工厂湿法冶金资源回收率。 展开更多
关键词 Transformer模型 最优化 Distributional Q-function DQN模型 资源回收
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基于负载预测与能耗优化的刮板输送机速度控制方法
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作者 汪卫兵 骆佳录 +3 位作者 李赖 赵栓峰 路正雄 李开放 《煤炭科学技术》 北大核心 2025年第10期259-268,共10页
针对综采工作面中刮板输送机因持续高速运转而导致的能源浪费和运输效率低下问题,结合双向割煤工艺,对刮板输送机的运行阶段进行了系统分析,建立了刮板输送机能耗模型,在此基础上提出了一种基于负载转矩预测与能耗优化相结合的速度控制... 针对综采工作面中刮板输送机因持续高速运转而导致的能源浪费和运输效率低下问题,结合双向割煤工艺,对刮板输送机的运行阶段进行了系统分析,建立了刮板输送机能耗模型,在此基础上提出了一种基于负载转矩预测与能耗优化相结合的速度控制方法。首先,建立煤量模型,描述煤量随运行工况变化的动态特性。随后,结合刮板输送机的运行阻力特性,明确煤量、驱动力与运行阻力之间的关系,构建刮板输送机的能耗模型。为应对综采工作面复杂多变的运行工况,引入粗糙径向基神经网络(Rough Radial Basis Function Neural Network, RRBFNN),对刮板输送机负载转矩进行精确预测,生成优化模型所需的关键输入变量。在此基础上,采用改进的粒子群优化算法(PSO),以能耗最小化为目标,对刮板输送机的运行速度进行优化,改进算法在引入动态惯性因子的同时,平衡了全局搜索与局部搜索能力,从而提高了优化的精度与收敛效率。最后,结合榆家梁43101综采工作面的实际数据对本文方法进行了验证。结果表明:该速度控制方法能够在一个生产循环中有效降低刮板输送机的能耗10.42%。 展开更多
关键词 刮板输送机 智能调速 能耗模型 粗糙径向基神经网络 改进粒子群算法
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基于光伏组件参数辨识的故障诊断分析
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作者 吕艳玲 钟晨 刘志鹏 《上海交通大学学报》 北大核心 2025年第9期1383-1396,I0010,共15页
为利用光伏板运行数据辨识光伏电池的重要参数,并通过这些参数诊断其运行状态,将二阶Bézier函数与自适应战争策略算法相结合,得到硅基光伏电池单二极管拓扑中光生电流、二极管反向饱和电流、二极管理想因子、串联电阻和并联电阻5... 为利用光伏板运行数据辨识光伏电池的重要参数,并通过这些参数诊断其运行状态,将二阶Bézier函数与自适应战争策略算法相结合,得到硅基光伏电池单二极管拓扑中光生电流、二极管反向饱和电流、二极管理想因子、串联电阻和并联电阻5个未知参数最优解的方法;对阴影、老化、短路和开路4种常见的故障进行理论和仿真分析.通过实验验证,对比辨识结果中参数的变化与故障类型,得出光伏单二极管模型5个参数与4种典型故障类型存在一定的对应关系,并得到不同故障类型下光伏组件各输出量的变化规律,为光伏电池故障判别及电池性能的判断提供参考. 展开更多
关键词 光伏电池 单二极管模型 参数辨识 故障判别 Bézier函数 战争策略优化
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基于改进YOLO的矿卡驾驶员疲劳检测算法 被引量:2
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作者 杜威 宁武 +1 位作者 孟丽囡 陈雨潼 《现代电子技术》 北大核心 2025年第7期126-131,共6页
针对现有疲劳驾驶检测报警不及时、检测精度不高以及需要人为监管的问题,提出一种改进YOLOv5s的疲劳驾驶目标检测算法。该算法使用轻量的EfficientNet骨干网络作为YOLOv5s的主干网络来进行特征提取,使模型参数大幅减少,降低模型的训练时... 针对现有疲劳驾驶检测报警不及时、检测精度不高以及需要人为监管的问题,提出一种改进YOLOv5s的疲劳驾驶目标检测算法。该算法使用轻量的EfficientNet骨干网络作为YOLOv5s的主干网络来进行特征提取,使模型参数大幅减少,降低模型的训练时间;同时选用SIoU作为模型的损失函数,优化模型损失计算方法,提升模型的检测精度。结果表明,优化后的YOLOv5s目标检测算法与原YOLOv5s相比,模型尺寸减少了2%,平均准确率提升了0.9%,能够有效提升矿用生产车疲劳驾驶目标的检测效果。 展开更多
关键词 矿用生产车 疲劳检测 YOLOv5s EfficientNet 损失函数 特征提取 迁移学习 模型优化
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基于自适应代理模型的加筋壳结构可靠性优化设计 被引量:1
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作者 刘玉琢 曹立雄 +1 位作者 吴建国 李海波 《机械强度》 北大核心 2025年第2期68-74,共7页
加筋壳结构具有较高的比刚度和比强度,被广泛应用于航空航天承力结构中。可靠性优化设计(Reliability Based Design Optimization,RBDO)方法通过综合考虑结构参数中的不确定性和风险因素,可避免结构的过保守设计,保证其在服役环境中的... 加筋壳结构具有较高的比刚度和比强度,被广泛应用于航空航天承力结构中。可靠性优化设计(Reliability Based Design Optimization,RBDO)方法通过综合考虑结构参数中的不确定性和风险因素,可避免结构的过保守设计,保证其在服役环境中的可靠性和安全性。提出了一种基于自适应代理模型的高效RBDO方法,来解决屈曲可靠性约束下的加筋壳结构轻量化设计问题。基于预期可行性函数准则实现了样本点的自适应添加,并通过构建分段函数将离散变量连续化,进而在保证设计结果可靠性的前提下提高优化效率。最后,通过将可靠性优化设计结果与确定性优化结果对比,验证了所提方法的有效性。 展开更多
关键词 加筋壳结构 可靠性优化设计 自适应代理模型 预期可行性函数准则
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基于Bayesian期望改进控制和Kriging模型的并行代理优化方法 被引量:1
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作者 杜晨 林成龙 +1 位作者 马义中 石雨葳 《计算机集成制造系统》 北大核心 2025年第4期1190-1204,共15页
针对经典期望改进策略因过于贪婪而易于陷入局部最优,以及Kriging模型十分适用于并行优化的特点,提出了基于Kriging模型和Bayesian期望改进控制的并行代理优化方法。实现过程中,Kriging模型在小样本条件下,建立输入与输出见的近似函数... 针对经典期望改进策略因过于贪婪而易于陷入局部最优,以及Kriging模型十分适用于并行优化的特点,提出了基于Kriging模型和Bayesian期望改进控制的并行代理优化方法。实现过程中,Kriging模型在小样本条件下,建立输入与输出见的近似函数关系。所提出的Bayesian期望改进控制策略充分利用Kriging模型对未试验点预测不确定性的度量能力,首先利用经典期望改进策略选取第一个试验点,并将其作为控制参考点;然后,借助所构造的控制函数更新贝叶斯期望改进控制策略,并将新增加试验点作为下个试验点选取的控制参考点。所提策略可以在提升全局探索能力的同时,使新试验点具有良好的空间分布特性。此外,借助控制函数调整方法,构建了两种拓展的Bayesian期望改进控制策略。数值算例及仿真案例结果表明:相比单点填充,Bayesian期望改进控制策略更高效;所提并行代理优化方法在同等精度条件下具有更好的稳健性及更快的收敛速度。 展开更多
关键词 期望改进策略 Bayesian期望改进控制 控制函数 KRIGING模型 并行代理优化方法
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基于FCLPSO的水量水质模型参数反演方法研究
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作者 朱沈涛 杨帆 +3 位作者 柳杨 范子武 乌景秀 李子祥 《水利水电技术(中英文)》 北大核心 2025年第7期54-66,共13页
【目的】复杂河网水量水质模型中参数多、维数高,模型参数反演难度大,优化目标函数选取、单参数和多参数不同反演方式等对参数反演精度影响需开展深入分析。【方法】提出基于快速综合粒子群优化算法(Fast Comprehensive Learning Partic... 【目的】复杂河网水量水质模型中参数多、维数高,模型参数反演难度大,优化目标函数选取、单参数和多参数不同反演方式等对参数反演精度影响需开展深入分析。【方法】提出基于快速综合粒子群优化算法(Fast Comprehensive Learning Particle Swarm Optimization,FCLPSO)的水量水质模型参数反演方法,设计参数反演数值试验,采用LH-OAT全局敏感性分析方法对7种模型性能评价指标进行目标函数优选,并分析模型单参数和多参数反演结果并分析不同反演方式的差异性。【结果】结果显示:NSE∗作为目标函数敏感度最高;不同类型参数均具有较高精度,单参数反演平均相对误差(MRE)为5.2%、变差系数(CV)为7.2%,多参数反演结果MRE为13.5%、CV为14%;多参数反演中水动力指标反演结果优于水质指标反演结果,多参数“分层反演”方式优于“同时反演”方式。【结论】结果表明:该模型参数反演方法具有较高的精度,有助于提升复杂河网水量水质模型参数估计时效性与准确性,为复杂河网数值模拟精度的提升提供了技术支撑。 展开更多
关键词 水量水质模型 参数反演 快速综合粒子群优化算法 目标函数 敏感性分析
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基于2阶自适应Kriging的不确定可靠性优化模型及算法研究
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作者 钟维宇 蔡敢为 +1 位作者 柳林燕 付鑫 《机械设计》 北大核心 2025年第6期189-198,共10页
针对复杂系统的设计阶段存在内部子系统功能关系耦合强度不稳定、连接非线性化、不确定因素的问题,提出了基于2阶自适应Kriging的不确定可靠性优化模型及算法。首先,进行复杂系统总体功能分析、认知集合构建及可信度分配,结合复杂系统... 针对复杂系统的设计阶段存在内部子系统功能关系耦合强度不稳定、连接非线性化、不确定因素的问题,提出了基于2阶自适应Kriging的不确定可靠性优化模型及算法。首先,进行复杂系统总体功能分析、认知集合构建及可信度分配,结合复杂系统子系统间的功能不确定性,求解子系统样本点及功能子集;其次,根据1阶及2阶自适应Kriging模型,对功能子集在失效域内进行迭代,趋向目标区域;最后,采用功能度量法对功能组合进行可靠性优选。通过算例分析,验证了算法模型的有效性。 展开更多
关键词 KRIGING模型 认知不确定 功能分析法 可信度分配 可靠性优化 举高消防车
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