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Self-adapting control parameters modifieddifferential evolution for trajectoryplanning of manipulators 被引量:12
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作者 Lianghong WU Yaonan WANG Shaowu ZHOU 《控制理论与应用(英文版)》 EI 2007年第4期365-373,共9页
Control parameters of original differential evolution (DE) are kept fixed throughout the entire evolutionary process. However, it is not an easy task to properly set control parameters in DE for different optiinizat... Control parameters of original differential evolution (DE) are kept fixed throughout the entire evolutionary process. However, it is not an easy task to properly set control parameters in DE for different optiinization problems. According to the relative position of two different individual vectors selected to generate a difference vector in the searching place, a self-adapting strategy for the scale factor F of the difference vector is proposed. In terms of the convergence status of the target vector in the current population, a self-adapting crossover probability constant CR strategy is proposed. Therefore, good target vectors have a lower CFI while worse target vectors have a large CFI. At the same time, the mutation operator is modified to improve the convergence speed. The performance of these proposed approaches are studied with the use of some benchmark problems and applied to the trajectory planning of a three-joint redundant manipulator. Finally, the experiment results show that the proposed approaches can greatly improve robustness and convergence speed. 展开更多
关键词 self-adapting control parameters differential evolution Redundant manipulator Trajectory planning
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Unfolding neutron spectra from water-pumping-injection multilayered concentric sphere neutron spectrometer using self-adaptive differential evolution algorithm 被引量:5
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作者 Rui Li Jian-Bo Yang +2 位作者 Xian-Guo Tuo Jie Xu Rui Shi 《Nuclear Science and Techniques》 SCIE EI CAS CSCD 2021年第3期41-51,共11页
A self-adaptive differential evolution neutron spectrum unfolding algorithm(SDENUA)is established in this study to unfold the neutron spectra obtained from a water-pumping-injection multilayered concentric sphere neut... A self-adaptive differential evolution neutron spectrum unfolding algorithm(SDENUA)is established in this study to unfold the neutron spectra obtained from a water-pumping-injection multilayered concentric sphere neutron spectrometer(WMNS).Specifically,the neutron fluence bounds are estimated to accelerate the algorithm convergence,and the minimum error between the optimal solution and input neutron counts with relative uncertainties is limited to 10^(-6)to avoid unnecessary calculations.Furthermore,the crossover probability and scaling factor are self-adaptively controlled.FLUKA Monte Carlo is used to simulate the readings of the WMNS under(1)a spectrum of Cf-252 and(2)its spectrum after being moderated,(3)a spectrum used for boron neutron capture therapy,and(4)a reactor spectrum.Subsequently,the measured neutron counts are unfolded using the SDENUA.The uncertainties of the measured neutron count and the response matrix are considered in the SDENUA,which does not require complex parameter tuning or an a priori default spectrum.The results indicate that the solutions of the SDENUA agree better with the IAEA spectra than those of MAXED and GRAVEL in UMG 3.1,and the errors of the final results calculated using the SDENUA are less than 12%.The established SDENUA can be used to unfold spectra from the WMNS. 展开更多
关键词 Water-pumping-injection multilayered spectrometer Neutron spectrum unfolding differential evolution algorithm self-adaptive control
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Multi-objective optimization of p-xylene oxidation process using an improved self-adaptive differential evolution algorithm 被引量:1
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作者 Lili Tao Bin Xu +1 位作者 Zhihua Hu Weimin Zhong 《Chinese Journal of Chemical Engineering》 SCIE EI CAS CSCD 2017年第8期983-991,共9页
The rise in the use of global polyester fiber contributed to strong demand of the Terephthalic acid (TPA). The liquid-phase catalytic oxidation of p-xylene (PX) to TPA is regarded as a critical and efficient chemi... The rise in the use of global polyester fiber contributed to strong demand of the Terephthalic acid (TPA). The liquid-phase catalytic oxidation of p-xylene (PX) to TPA is regarded as a critical and efficient chemical process in industry [ 1 ]. PX oxidation reaction involves many complex side reactions, among which acetic acid combustion and PX combustion are the most important. As the target product of this oxidation process, the quality and yield of TPA are of great concern. However, the improvement of the qualified product yield can bring about the high energy consumption, which means that the economic objectives of this process cannot be achieved simulta- neously because the two objectives are in conflict with each other. In this paper, an improved self-adaptive multi-objective differential evolution algorithm was proposed to handle the multi-objective optimization prob- lems. The immune concept is introduced to the self-adaptive multi-objective differential evolution algorithm (SADE) to strengthen the local search ability and optimization accuracy. The proposed algorithm is successfully tested on several benchmark test problems, and the performance measures such as convergence and divergence metrics are calculated. Subsequently, the multi-objective optimization of an industrial PX oxidation process is carried out using the proposed immune self-adaptive multi-objective differential evolution algorithm (ISADE). Optimization results indicate that application oflSADE can greatly improve the yield of TPA with low combustion loss without degenerating TA quality. 展开更多
关键词 p-Xylene oxidation Operation condition optimization Multi-objective optimization self-adaptive differential evolution
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Self-adapting Scalable Differential Evolution Algorithm
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作者 刘荣辉 郑建国 《Journal of Donghua University(English Edition)》 EI CAS 2011年第4期384-390,共7页
Differential evolution(DE) demonstrates good convergence performance,but it is difficult to choose trial vector generation strategies and associated control parameter values.An improved method,self-adapting scalable D... Differential evolution(DE) demonstrates good convergence performance,but it is difficult to choose trial vector generation strategies and associated control parameter values.An improved method,self-adapting scalable DE(SSDE) algorithm,is proposed.Trial vector generation strategies and crossover probability are respectively self-adapted by two operators in this algorithm.Meanwhile,to enhance the convergence rate,vectors selected randomly with the optimal fitness values are introduced to guide searching direction.Benchmark problems are used to verify this algorithm.Compared with other well-known DE algorithms,experiment results indicate that this algorithm is better than other DE algorithms in terms of convergence rate and quality of optimization. 展开更多
关键词 differential evolution (DE) SCALABLE self-adapting parameter control function optimization
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Differential Evolution Algorithm Based Self-adaptive Control Strategy for Fed-batch Cultivation of Yeast
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作者 Aiyun Hu Sunli Cong +2 位作者 Jian Ding Yao Cheng Enock Mpofu 《Computer Systems Science & Engineering》 SCIE EI 2021年第7期65-77,共13页
In the fed-batch cultivation of Saccharomyces cerevisiae,excessive glucose addition leads to increased ethanol accumulation,which will reduce the efficiency of glucose utilization and inhibit product synthesis.Insuffi... In the fed-batch cultivation of Saccharomyces cerevisiae,excessive glucose addition leads to increased ethanol accumulation,which will reduce the efficiency of glucose utilization and inhibit product synthesis.Insufficient glucose addition limits cell growth.To properly regulate glucose feed,a different evolution algorithm based on self-adaptive control strategy was proposed,consisting of three modules(PID,system identification and parameter optimization).Performance of the proposed and conventional PID controllers was validated and compared in simulated and experimental cultivations.In the simulation,cultivation with the self-adaptive control strategy had a more stable glucose feed rate and concentration,more stable ethanol concentration around the set-point(1.0 g·L^(-1)),and final biomass concentration of 34.5 g-DCW·L^(-1),29.2%higher than that with a conventional PID control strategy.In the experiment,the cultivation with the self-adaptive control strategy also had more stable glucose and ethanol concentrations,as well as a final biomass concentration that was 37.4%higher than that using the conventional strategy. 展开更多
关键词 Saccharomyces cerevisiae Ethanol accumulation differential evolution algorithm self-adaptive control
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Hydraulic cylinder control of injection molding machine based on differential evolution fractional order PID 被引量:2
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作者 LI Ya-qiu GU Li-chen +1 位作者 YANG Sha XUE Xu-fei 《Journal of Measurement Science and Instrumentation》 CAS CSCD 2020年第4期317-325,共9页
Injection molding machine,hydraulic elevator,speed actuators belong to variable speed pump control cylinder system.Because variable speed pump control cylinder system is a nonlinear hydraulic system,it has some proble... Injection molding machine,hydraulic elevator,speed actuators belong to variable speed pump control cylinder system.Because variable speed pump control cylinder system is a nonlinear hydraulic system,it has some problems such as response lag and poor steady-state accuracy.To solve these problems,for the hydraulic cylinder of injection molding machine driven by the servo motor,a fractional order proportion-integration-diferentiation(FOPID)control strategy is proposed to realize the speed tracking control.Combined with the adaptive differential evolution algorithm,FOPID control strategy is used to determine the parameters of controller on line based on the test on the servo-motor-driven gear-pump-controlled hydraulic cylinder injection molding machine.Then the slef-adaptive differential evolution fractional order PID controller(SADE-FOPID)model of variable speed pump-controlled hydraulic cylinder is established in the test system with simulated loading.The simulation results show that compared with the classical PID control,the FOPID has better steady-state accuracy and fast response when the control parameters are optimized by the adaptive differential evolution algorithm.Experimental results show that SADE-FOPID control strategy is effective and feasible,and has good anti-load disturbance performance. 展开更多
关键词 variable speed pump-controlled cylinder fractional order proportion-integration-differentiation(FOPID) self-adaptive differential evolution(sade) injection molding machine control anti-load disturbance
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Chemical process dynamic optimization based on hybrid differential evolution algorithm integrated with Alopex 被引量:5
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作者 范勤勤 吕照民 +1 位作者 颜学峰 郭美锦 《Journal of Central South University》 SCIE EI CAS 2013年第4期950-959,共10页
To solve dynamic optimization problem of chemical process (CPDOP), a hybrid differential evolution algorithm, which is integrated with Alopex and named as Alopex-DE, was proposed. In Alopex-DE, each original individua... To solve dynamic optimization problem of chemical process (CPDOP), a hybrid differential evolution algorithm, which is integrated with Alopex and named as Alopex-DE, was proposed. In Alopex-DE, each original individual has its own symbiotic individual, which consists of control parameters. Differential evolution operator is applied for the original individuals to search the global optimization solution. Alopex algorithm is used to co-evolve the symbiotic individuals during the original individual evolution and enhance the fitness of the original individuals. Thus, control parameters are self-adaptively adjusted by Alopex to obtain the real-time optimum values for the original population. To illustrate the whole performance of Alopex-DE, several varietal DEs were applied to optimize 13 benchmark functions. The results show that the whole performance of Alopex-DE is the best. Further, Alopex-DE was applied to solve 4 typical CPDOPs, and the effect of the discrete time degree on the optimization solution was analyzed. The satisfactory result is obtained. 展开更多
关键词 evolutionary computation dynamic optimization differential evolution algorithm Alopex algorithm self-adaptivity
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Research on Rosenbrock Function Optimization Problem Based on Improved Differential Evolution Algorithm 被引量:4
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作者 Jian Ma Haiming Li 《Journal of Computer and Communications》 2019年第11期107-120,共14页
The Rosenbrock function optimization belongs to unconstrained optimization problems, and its global minimum value is located at the bottom of a smooth and narrow valley of the parabolic shape. It is very difficult to ... The Rosenbrock function optimization belongs to unconstrained optimization problems, and its global minimum value is located at the bottom of a smooth and narrow valley of the parabolic shape. It is very difficult to find the global minimum value of the function because of the little information provided for the optimization algorithm. According to the characteristics of the Rosenbrock function, this paper specifically proposed an improved differential evolution algorithm that adopts the self-adaptive scaling factor F and crossover rate CR with elimination mechanism, which can effectively avoid premature convergence of the algorithm and local optimum. This algorithm can also expand the search range at an early stage to find the global minimum of the Rosenbrock function. Many experimental results show that the algorithm has good performance of function optimization and provides a new idea for optimization problems similar to the Rosenbrock function for some problems of special fields. 展开更多
关键词 differential evolution Rosenbrock FUNCTION self-adaptIVE MUTATION ELIMINATION Mechanism
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Harmony search algorithm with differential evolution based control parameter co-evolution and its application in chemical process dynamic optimization 被引量:1
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作者 范勤勤 王循华 颜学峰 《Journal of Central South University》 SCIE EI CAS CSCD 2015年第6期2227-2237,共11页
A modified harmony search algorithm with co-evolutional control parameters(DEHS), applied through differential evolution optimization, is proposed. In DEHS, two control parameters, i.e., harmony memory considering rat... A modified harmony search algorithm with co-evolutional control parameters(DEHS), applied through differential evolution optimization, is proposed. In DEHS, two control parameters, i.e., harmony memory considering rate and pitch adjusting rate, are encoded as a symbiotic individual of an original individual(i.e., harmony vector). Harmony search operators are applied to evolving the original population. DE is applied to co-evolving the symbiotic population based on feedback information from the original population. Thus, with the evolution of the original population in DEHS, the symbiotic population is dynamically and self-adaptively adjusted, and real-time optimum control parameters are obtained. The proposed DEHS algorithm has been applied to various benchmark functions and two typical dynamic optimization problems. The experimental results show that the performance of the proposed algorithm is better than that of other HS variants. Satisfactory results are obtained in the application. 展开更多
关键词 harmony search differential evolution optimization CO-evolution self-adaptive control parameter dynamic optimization
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A Hybrid Differential Evolution Algorithm Integrated with Particle Swarm Optimization
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作者 范勤勤 颜学峰 《Journal of Donghua University(English Edition)》 EI CAS 2014年第2期197-200,共4页
To implement self-adaptive control parameters, a hybrid differential evolution algorithm integrated with particle swarm optimization (PSODE) is proposed. In the PSODE, control parameters are encoded to be a symbioti... To implement self-adaptive control parameters, a hybrid differential evolution algorithm integrated with particle swarm optimization (PSODE) is proposed. In the PSODE, control parameters are encoded to be a symbiotic individual of original individual, and each original individual has its own symbiotic individual. Differential evolution ( DE) operators are used to evolve the original population. And, particle swarm optimization (PSO) is applied to co-evolving the symbiotic population. Thus, with the evolution of the original population in PSODE, the symbiotic population is dynamically and self-adaptively adjusted and the realtime optimum control parameters are obtained. The proposed algorithm is compared with some DE variants on nine functious. The results show that the average performance of PSODE is the best. 展开更多
关键词 differential evolution algorithm particle swann optimization self-adaptIVE CO-evolution
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Covariance Matrix Learning Differential Evolution Algorithm Based on Correlation
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作者 Sainan Yuan Quanxi Feng 《International Journal of Intelligence Science》 2021年第1期17-30,共14页
Differential evolution algorithm based on the covariance matrix learning can adjust the coordinate system according to the characteristics of the population, which make<span style="font-family:Verdana;"&g... Differential evolution algorithm based on the covariance matrix learning can adjust the coordinate system according to the characteristics of the population, which make<span style="font-family:Verdana;">s</span><span style="font-family:Verdana;"> the search move in a more favorable direction. In order to obtain more accurate information about the function shape, this paper propose</span><span style="font-family:Verdana;">s</span><span style="font-family:;" "=""> <span style="font-family:Verdana;">covariance</span><span style="font-family:Verdana;"> matrix learning differential evolution algorithm based on correlation (denoted as RCLDE)</span></span><span style="font-family:;" "=""> </span><span style="font-family:Verdana;">to improve the search efficiency of the algorithm. First, a hybrid mutation strategy is designed to balance the diversity and convergence of the population;secondly, the covariance learning matrix is constructed by selecting the individual with the less correlation;then, a comprehensive learning mechanism is comprehensively designed by two covariance matrix learning mechanisms based on the principle of probability. Finally,</span><span style="font-family:;" "=""> </span><span style="font-family:;" "=""><span style="font-family:Verdana;">the algorithm is tested on the CEC2005, and the experimental results are compared with other effective differential evolution algorithms. The experimental results show that the algorithm proposed in this paper is </span><span style="font-family:Verdana;">an effective algorithm</span><span style="font-family:Verdana;">.</span></span> 展开更多
关键词 differential evolution Algorithm CORRELATION Covariance Matrix Parameter self-adaptive Technique
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V2G模式下基于SaDE-BBO算法的有源配电网优化 被引量:7
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作者 李伟豪 杨伟 +1 位作者 左逸凡 李娇 《电力工程技术》 北大核心 2023年第4期41-49,共9页
为了解决大规模电动汽车入网难以实现个体调度以及集群调度存在“维数灾”的问题,建立基于车辆到电网(vehicle-to-grid,V2G)模式的有源配电网分层分区优化运行模型。其中,上层优化模型对电动汽车集控中心(electric vehicle agent,EVA)... 为了解决大规模电动汽车入网难以实现个体调度以及集群调度存在“维数灾”的问题,建立基于车辆到电网(vehicle-to-grid,V2G)模式的有源配电网分层分区优化运行模型。其中,上层优化模型对电动汽车集控中心(electric vehicle agent,EVA)进行调度,优化各区域EVA的充放电功率并作为下层优化模型的输入;下层优化模型调整各调压方式。在优化算法方面,提出一种自适应差分进化-生物地理学优化(self-adaptive differential evolution-biogeography-based optimization,SaDE-BBO)算法,并在改进的IEEE 33节点配电系统中进行仿真分析。结果表明:在不同充电控制策略下,V2G模式与各调压方式的协调互动在降低各区域EVA运营成本、平抑负荷波动以及保证有源配电网的安全和经济运行方面优势显著,与其他优化算法相比,SaDE-BBO算法具有更优质的解和更好的收敛性。 展开更多
关键词 车辆到电网(V2G) 分布式电源 有源配电网 分层分区 优化运行 自适应差分进化-生物地理学优化(sade-BBO)算法
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饱和度自适应微分进化算法在电力经济调度中的应用 被引量:11
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作者 刘卓 黄纯 +1 位作者 郭振华 梁勇超 《电网技术》 EI CSCD 北大核心 2011年第2期100-104,共5页
建立了电力系统经济调度模型,该模型以发电成本最小为目标,考虑了火电机组阀点效应和系统运行约束,并提出了求解该模型的饱和度自适应微分进化(saturation and adaptive differential evolution,SADE)算法。为避免算法搜索的盲目性,使... 建立了电力系统经济调度模型,该模型以发电成本最小为目标,考虑了火电机组阀点效应和系统运行约束,并提出了求解该模型的饱和度自适应微分进化(saturation and adaptive differential evolution,SADE)算法。为避免算法搜索的盲目性,使算法既能集中于局部最优解又能兼顾全局最优解,引入了控制参数自适应调整策略和饱和度概念,该算法可避免"早熟"现象,收敛速度快。3机组、13机组和40机组算例结果验证了SADE算法的有效性。 展开更多
关键词 饱和度自适应微分进化算法 微分进化算法 饱和度 经济调度 自适应调整策略 阀点效应
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基于改进差分进化算法的Wiener模型辨识 被引量:9
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作者 徐小平 白博 钱富才 《系统仿真学报》 CAS CSCD 北大核心 2016年第1期147-153,共7页
针对非线性Wiener模型的参数辨识问题,提出了一种基于Sigmoid函数及自适应算子改进差分进化(improved differential evolution algorithm with Sigmoid function and adaptive mutation operator,SADE)算法的参数辨识方法。利用Sigmoid... 针对非线性Wiener模型的参数辨识问题,提出了一种基于Sigmoid函数及自适应算子改进差分进化(improved differential evolution algorithm with Sigmoid function and adaptive mutation operator,SADE)算法的参数辨识方法。利用Sigmoid函数及自适应变异算子改进了基本差分进化算法的变异操作部分,改进的方法能够有效地克服基本差分进化算法的过早收敛和不稳定性等缺点。将该改进差分进化算法应用于对非线性Wiener模型的参数辨识问题,达到了较高的辨识精度。在仿真试验中,与其它已有方法进行比较,仿真结果说明了所给的参数辨识方法是合理和有效的。 展开更多
关键词 差分进化算法 SIGMOID函数 自适应算子 sade算法 WIENER模型 辨识
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改进自适应差分进化算法求解大规模整数任务分配 被引量:3
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作者 王永皎 《计算机应用》 CSCD 北大核心 2012年第8期2165-2167,共3页
针对0-1任务规划模型存在维数灾维的问题,提出一种基于改进自适应差分进化(SADE)算法的大规模整数任务分配算法。首先,将任务分配的0-1规划模型转化整数规划模型,不仅大幅减少了优化变量的维数,还减少了整式约束条件;然后,将常用的变异... 针对0-1任务规划模型存在维数灾维的问题,提出一种基于改进自适应差分进化(SADE)算法的大规模整数任务分配算法。首先,将任务分配的0-1规划模型转化整数规划模型,不仅大幅减少了优化变量的维数,还减少了整式约束条件;然后,将常用的变异算子DE/rand/1/bin和DE/best/2/bin结合起来组成新的自适应变异算子,使得自适应差分进化算法既有较快的收敛速度,又降低了变异算子对具体问题的依赖;并用改进自适应差分进化算法求解整数规划。最后,通过典型的任务分配实例验证了算法在优化大规模任务分配的有效性和快速性。 展开更多
关键词 自适应差分进化算法 任务分配 0-1规划 整数规划 变异
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基于机器学习的短期电力负荷预测方法比较及改进研究 被引量:10
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作者 韩雅萱 石梦舒 +2 位作者 黄元生 刘敦楠 段文军 《科技管理研究》 CSSCI 北大核心 2023年第1期163-170,共8页
针对电力系统对短期电力负荷预测精确性的需求,以长短期记忆算法为基础,采用差分自适应进化算法对其进一步改进,从而提出一种基于机器学习的混合算法(SaDE-LSTM)对电力负荷进行短期预测。基于我国2004—2018年间月度社会用电负荷数据,... 针对电力系统对短期电力负荷预测精确性的需求,以长短期记忆算法为基础,采用差分自适应进化算法对其进一步改进,从而提出一种基于机器学习的混合算法(SaDE-LSTM)对电力负荷进行短期预测。基于我国2004—2018年间月度社会用电负荷数据,对改进后的混合算法进行性能测试,首先利用差分进化算法的自适应变异和交叉因子来优化长短期记忆算法的初始参数,在此基础上,运用寻优得到的参数训练长短期记忆算法从而得到优化后的预测结果。为证明其优越性,对同组数据采用支持向量机(SVM)、反向传播神经网络、自回归积分滑动平均等算法分别预测。各方法预测结果和真实结果对比分析证明,SaDE-LSTM算法对时间序列数据量要求较低,同时相比其他传统算法有更高的预测精度。该改进算法能够为参与电力系统调度的虚拟电厂、负荷聚合商等对小样本和高精度预测有需求的主体提供参考。 展开更多
关键词 sade-LSTM算法 时间序列分析 电力负荷预测 长短期记忆循环神经网络 差分进化算法
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一种求解动态优化问题的改进自适应差分进化算法 被引量:2
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作者 刘树强 秦进 《计算机工程》 CAS CSCD 北大核心 2021年第4期84-91,99,共9页
针对原始动态自适应差分进化(SADE)算法局部搜索能力弱和寻优精度低的问题,提出一种求解动态优化问题的邻域搜索差分进化(NSDE)算法。通过引入邻域搜索机制,在划分种群最优个体的邻域空间范围内产生候选解,选取候选解集合中的最优解并... 针对原始动态自适应差分进化(SADE)算法局部搜索能力弱和寻优精度低的问题,提出一种求解动态优化问题的邻域搜索差分进化(NSDE)算法。通过引入邻域搜索机制,在划分种群最优个体的邻域空间范围内产生候选解,选取候选解集合中的最优解并对种群最优个体进行迭代,增强算法局部搜索能力。在传统基于距离的排斥方案中,引入hill-valley函数追踪邻近峰,提高算法寻优精度。实验结果表明,与SADE、人工免疫网络动态优化、多种群竞争差分进化和改进差分进化算法相比,NSDE算法在49个测试问题中分别有28、38、29和38个测试问题的平均误差更小,综合性能表现更好。 展开更多
关键词 自适应差分进化 动态优化问题 邻域搜索 排斥方案 平均误差
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Synthesis and Design of 5G Duplexer Based on Optimization Method 被引量:1
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作者 WU Qingqiang CHEN Jianzhong +1 位作者 WU Zengqiang GONG Hongwei 《ZTE Communications》 2022年第3期70-76,共7页
A new optimization method is proposed to realize the synthesis of duplexers.The traditional optimization method takes all the variables of the duplexer into account,resulting in too many variables to be optimized when... A new optimization method is proposed to realize the synthesis of duplexers.The traditional optimization method takes all the variables of the duplexer into account,resulting in too many variables to be optimized when the order of the duplexer is too high,so it is not easy to fall into the local solution.In order to solve this problem,a new optimization strategy is proposed in this paper,that is,two-channel filters are optimized separately,which can reduce the number of optimization variables and greatly reduce the probability of results falling into local solutions.The optimization method combines the self-adaptive differential evolution algorithm(SADE)with the Levenberg-Marquardt(LM)algorithm to get a global solution more easily and accelerate the optimization speed.To verify its practical value,we design a 5 G duplexer based on the proposed method.The duplexer has a large external coupling,and how to achieve a feed structure with a large coupling bandwidth at the source is also discussed.The experimental results show that the proposed optimization method can realize the synthesis of higher-order duplexers compared with the traditional methods. 展开更多
关键词 OPTIMIZATION self-adaptive differential evolution algorithm LM optimization algorithm filter synthesis DUPLEXER
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多模态电网无功功率调度优化算法研究
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作者 席少卿 王海云 +2 位作者 蔡正梓 杨莉萍 刘雨声 《自动化仪表》 2026年第3期59-64,共6页
针对目前多模态电网无功功率调度存在性能较差的问题,提出了一种自适应微分进化(SADE)算法。提出了一种群生成策略,以提升种群多样性。提出了融合突变常数和交叉常数的控制参数范围自适应机制,以改善传统启发式算法中指定控制参数设置... 针对目前多模态电网无功功率调度存在性能较差的问题,提出了一种自适应微分进化(SADE)算法。提出了一种群生成策略,以提升种群多样性。提出了融合突变常数和交叉常数的控制参数范围自适应机制,以改善传统启发式算法中指定控制参数设置易受主观性影响的问题。在试验阶段,通过IEEE 41总线海上风电场测试系统验证SADE算法性能。与对比算法相比,SADE算法综合性能最优。试验结果证明了SADE算法的有效性及实用性。通过将控制参数的搜索标准从特定值放宽到一定区间,该研究可为快速最优无功功率调度(ORPD)问题提供解决思路。 展开更多
关键词 电力系统 多模态 最优无功功率调度 启发式算法 自适应微分进化 控制参数
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Bilevel Optimal Infrastructure Planning Method for the Inland Battery Swapping Stations and Battery-Powered Ships
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作者 Yan Zhang Lin Sun +4 位作者 Wen Sun Fan Ma Runlong Xiao You Wu He Huang 《Tsinghua Science and Technology》 SCIE EI CAS CSCD 2024年第5期1323-1340,共18页
Green shipping and electrification have been the main topics in the shipping industry.In this process,the pure battery-powered ship is developed,which is zero-emission and well-suited for inland shipping.Currently,bat... Green shipping and electrification have been the main topics in the shipping industry.In this process,the pure battery-powered ship is developed,which is zero-emission and well-suited for inland shipping.Currently,battery swapping stations and ships are being explored since battery charging ships may not be feasible for inland long-distance trips.However,improper infrastructure planning for battery swapping stations and ships will increase costs and decrease operation efficiency.Therefore,a bilevel optimal infrastructure planning method is proposed in this paper for battery swapping stations and ships.First,the energy consumption model for the battery swapping ship is established considering the influence of the sailing environment.Second,a bilevel optimization model is proposed to minimize the total cost.Specifically,the battery swapping station(BSS)location problem is investigated at the upper level.The optimization of battery size in each battery swapping station and ship and battery swapping scheme are studied at the lower level based on speed and energy optimization.Finally,the bilevel self-adaptive differential evolution algorithm(BlSaDE)is proposed to solve this problem.The simulation results show that total cost could be reduced by 5.9%compared to the original results,and the effectiveness of the proposed method is confirmed. 展开更多
关键词 inland battery swapping stations and ships station location problem battery sizing infrastructure planning speed and energy optimization bilevel self-adaptive differential evolution algorithm(Blsade)
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