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Temperature control for liquid-cooled fuel cells based on fuzzy logic and variable-gain generalized supertwisting algorithm
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作者 CHEN Lin JIA Zhi-huan +1 位作者 DING Tian-wei GAO Jin-wu 《控制理论与应用》 北大核心 2025年第8期1596-1605,共10页
The liquid cooling system(LCS)of fuel cells is challenged by significant time delays,model uncertainties,pump and fan coupling,and frequent disturbances,leading to overshoot and control oscillations that degrade tempe... The liquid cooling system(LCS)of fuel cells is challenged by significant time delays,model uncertainties,pump and fan coupling,and frequent disturbances,leading to overshoot and control oscillations that degrade temperature regulation performance.To address these challenges,we propose a composite control scheme combining fuzzy logic and a variable-gain generalized supertwisting algorithm(VG-GSTA).Firstly,a one-dimensional(1D)fuzzy logic controler(FLC)for the pump ensures stable coolant flow,while a two-dimensional(2D)FLC for the fan regulates the stack temperature near the reference value.The VG-GSTA is then introduced to eliminate steady-state errors,offering resistance to disturbances and minimizing control oscillations.The equilibrium optimizer is used to fine-tune VG-GSTA parameters.Co-simulation verifies the effectiveness of our method,demonstrating its advantages in terms of disturbance immunity,overshoot suppression,tracking accuracy and response speed. 展开更多
关键词 liquid-cooled fuel cell temperature control generalized supertwisting algorithm fuzzy control equilibrium optimizer
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Fuzzy-second order sliding mode control optimized by genetic algorithm applied in direct torque control of dual star induction motor 被引量:2
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作者 Ghoulemallah BOUKHALFA Sebti BELKACEM +1 位作者 Abdesselem CHIKHI Moufid BOUHENTALA 《Journal of Central South University》 SCIE EI CAS CSCD 2022年第12期3974-3985,共12页
The direct torque control of the dual star induction motor(DTC-DSIM) using conventional PI controllers is characterized by unsatisfactory performance, such as high ripples of torque and flux, and sensitivity to parame... The direct torque control of the dual star induction motor(DTC-DSIM) using conventional PI controllers is characterized by unsatisfactory performance, such as high ripples of torque and flux, and sensitivity to parametric variations. Among the most evoked control strategies adopted in this field to overcome these drawbacks presented in classical drive, it is worth mentioning the use of the second order sliding mode control(SOSMC) based on the super twisting algorithm(STA) combined with the fuzzy logic control(FSOSMC). In order to realize the optimal control performance, the FSOSMC parameters are adjusted using an optimization algorithm based on the genetic algorithm(GA). The performances of the envisaged control scheme, called G-FSOSMC, are investigated against G-SOSMC, G-PI and BBO-FSOSMC algorithms. The proposed controller scheme is efficient in reducing the torque and flux ripples, and successfully suppresses chattering. The effects of parametric uncertainties do not affect system performance. 展开更多
关键词 double star induction machine direct torque control fuzzy second order sliding mode control genetic algorithm biogeography based optimization algorithm
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Genetic algorithm and particle swarm optimization tuned fuzzy PID controller on direct torque control of dual star induction motor 被引量:16
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作者 BOUKHALFA Ghoulemallah BELKACEM Sebti +1 位作者 CHIKHI Abdesselem BENAGGOUNE Said 《Journal of Central South University》 SCIE EI CAS CSCD 2019年第7期1886-1896,共11页
This study presents analysis, control and comparison of three hybrid approaches for the direct torque control (DTC) of the dual star induction motor (DSIM) drive. Its objective consists of combining three different he... This study presents analysis, control and comparison of three hybrid approaches for the direct torque control (DTC) of the dual star induction motor (DSIM) drive. Its objective consists of combining three different heuristic optimization techniques including PID-PSO, Fuzzy-PSO and GA-PSO to improve the DSIM speed controlled loop behavior. The GA and PSO algorithms are developed and implemented into MATLAB. As a result, fuzzy-PSO is the most appropriate scheme. The main performance of fuzzy-PSO is reducing high torque ripples, improving rise time and avoiding disturbances that affect the drive performance. 展开更多
关键词 dual star induction motor drive direct torque control particle swarm optimization (PSO) fuzzy logic control genetic algorithms
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Fuzzy adaptive genetic algorithm based on auto-regulating fuzzy rules 被引量:6
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作者 喻寿益 邝溯琼 《Journal of Central South University》 SCIE EI CAS 2010年第1期123-128,共6页
There are defects such as the low convergence rate and premature phenomenon on the performance of simple genetic algorithms (SGA) as the values of crossover probability (Pc) and mutation probability (Pro) are fi... There are defects such as the low convergence rate and premature phenomenon on the performance of simple genetic algorithms (SGA) as the values of crossover probability (Pc) and mutation probability (Pro) are fixed. To solve the problems, the fuzzy control method and the genetic algorithms were systematically integrated to create a kind of improved fuzzy adaptive genetic algorithm (FAGA) based on the auto-regulating fuzzy rules (ARFR-FAGA). By using the fuzzy control method, the values of Pc and Pm were adjusted according to the evolutional process, and the fuzzy rules were optimized by another genetic algorithm. Experimental results in solving the function optimization problems demonstrate that the convergence rate and solution quality of ARFR-FAGA exceed those of SGA, AGA and fuzzy adaptive genetic algorithm based on expertise (EFAGA) obviously in the global search. 展开更多
关键词 adaptive genetic algorithm fuzzy rules auto-regulating crossover probability adjustment
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Intelligent vehicle lateral controller design based on genetic algorithmand T-S fuzzy-neural network
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作者 RuanJiuhong FuMengyin LiYibin 《Journal of Systems Engineering and Electronics》 SCIE EI CSCD 2005年第2期382-387,共6页
Non-linearity and parameter time-variety are inherent properties of lateral motions of a vehicle. How to effectively control intelligent vehicle (IV) lateral motions is a challenging task. Controller design can be reg... Non-linearity and parameter time-variety are inherent properties of lateral motions of a vehicle. How to effectively control intelligent vehicle (IV) lateral motions is a challenging task. Controller design can be regarded as a process of searching optimal structure from controller structure space and searching optimal parameters from parameter space. Based on this view, an intelligent vehicle lateral motions controller was designed. The controller structure was constructed by T-S fuzzy-neural network (FNN). Its parameters were searched and selected with genetic algorithm (GA). The simulation results indicate that the controller designed has strong robustness, high precision and good ride quality, and it can effectively resolve IV lateral motion non-linearity and time-variant parameters problem. 展开更多
关键词 intelligent vehicle genetic algorithm fuzzy-neural network lateral control robustness.
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基于GA-Fuzzy-PID算法的棉田施肥灌溉系统研究 被引量:1
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作者 王昊 张立新 +2 位作者 胡雪 李文春 王晓瑛 《农机化研究》 北大核心 2025年第4期50-56,64,共8页
在水肥一体控制器中,PID控制算法易引起超调,产生振荡;Fuzzy-PID控制算法由于参数基于人为经验设定,控制欠细腻。针对上述问题,研究并设计了一种基于GA-Fuzzy-PID算法的控制器,以期实现施肥灌溉系统的精准控制。在不同目标EC设定值下,对... 在水肥一体控制器中,PID控制算法易引起超调,产生振荡;Fuzzy-PID控制算法由于参数基于人为经验设定,控制欠细腻。针对上述问题,研究并设计了一种基于GA-Fuzzy-PID算法的控制器,以期实现施肥灌溉系统的精准控制。在不同目标EC设定值下,对PID算法、Fuzzy-PID算法和GA-Fuzzy-PID算法进行仿真对比。结果表明:基于GA-Fuzzy-PID的控制器具有优异的控制效果,更能满足施肥灌溉系统精准控制的要求。 展开更多
关键词 棉田 灌溉施肥 精准控制 遗传优化 GA-fuzzy-PID
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Ant colony optimization algorithm and its application to Neuro-Fuzzy controller design 被引量:11
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作者 Zhao Baojiang Li Shiyong 《Journal of Systems Engineering and Electronics》 SCIE EI CSCD 2007年第3期603-610,共8页
An adaptive ant colony algorithm is proposed based on dynamically adjusting the strategy of updating trail information. The algorithm can keep good balance between accelerating convergence and averting precocity and s... An adaptive ant colony algorithm is proposed based on dynamically adjusting the strategy of updating trail information. The algorithm can keep good balance between accelerating convergence and averting precocity and stagnation. The results of function optimization show that the algorithm has good searching ability and high convergence speed. The algorithm is employed to design a neuro-fuzzy controller for real-time control of an inverted pendulum. In order to avoid the combinatorial explosion of fuzzy rules due tσ multivariable inputs, a state variable synthesis scheme is employed to reduce the number of fuzzy rules greatly. The simulation results show that the designed controller can control the inverted pendulum successfully. 展开更多
关键词 neuro-fuzzy controller ant colony algorithm function optimization genetic algorithm inverted pen-dulum system.
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Fractional order PID control for steer-by-wire system of emergency rescue vehicle based on genetic algorithm 被引量:8
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作者 XU Fei-xiang LIU Xin-hui +2 位作者 CHEN Wei ZHOU Chen CAO Bing-wei 《Journal of Central South University》 SCIE EI CAS CSCD 2019年第9期2340-2353,共14页
Aiming at dealing with the difficulty for traditional emergency rescue vehicle(ECV)to enter into limited rescue scenes,the electro-hydraulic steer-by-wire(SBW)system is introduced to achieve the multi-mode steering of... Aiming at dealing with the difficulty for traditional emergency rescue vehicle(ECV)to enter into limited rescue scenes,the electro-hydraulic steer-by-wire(SBW)system is introduced to achieve the multi-mode steering of the ECV.The overall structure and mathematical model of the SBW system are described at length.The fractional order proportional-integral-derivative(FOPID)controller based on fractional calculus theory is designed to control the steering cylinder’s movement in SBW system.The anti-windup problem is considered in the FOPID controller design to reduce the bad influence of saturation.Five parameters of the FOPID controller are optimized using the genetic algorithm by maximizing the fitness function which involves integral of time by absolute value error(ITAE),peak overshoot,as well as settling time.The time-domain simulations are implemented to identify the performance of the raised FOPID controller.The simulation results indicate the presented FOPID controller possesses more effective control properties than classical proportional-integral-derivative(PID)controller on the part of transient response,tracking capability and robustness. 展开更多
关键词 steer-by-wire system emergency rescue vehicle fractional order proportional-integral-derivative(FOPID)controller parameter optimization genetic algorithm
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Optimal fuzzy PID controller with adjustable factors based on flexible polyhedron search algorithm 被引量:2
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作者 谭冠政 肖宏峰 王越超 《Journal of Central South University of Technology》 EI 2002年第2期128-133,共6页
A new kind of optimal fuzzy PID controller is proposed, which contains two parts. One is an on line fuzzy inference system, and the other is a conventional PID controller. In the fuzzy inference system, three adjustab... A new kind of optimal fuzzy PID controller is proposed, which contains two parts. One is an on line fuzzy inference system, and the other is a conventional PID controller. In the fuzzy inference system, three adjustable factors x p, x i , and x d are introduced. Their functions are to further modify and optimize the result of the fuzzy inference so as to make the controller have the optimal control effect on a given object. The optimal values of these adjustable factors are determined based on the ITAE criterion and the Nelder and Mead′s flexible polyhedron search algorithm. This optimal fuzzy PID controller has been used to control the executive motor of the intelligent artificial leg designed by the authors. The result of computer simulation indicates that this controller is very effective and can be widely used to control different kinds of objects and processes. 展开更多
关键词 OPTIMAL fuzzy inference PID controller adjustable factor flexible polyhedron search algorithm intelligent artificial leg
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The Distribution Population-based Genetic Algorithm for Parameter Optimization PID Controller 被引量:8
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作者 CHENQing-Geng WANGNing HUANGShao-Feng 《自动化学报》 EI CSCD 北大核心 2005年第4期646-650,共5页
Enlightened by distribution of creatures in natural ecology environment, the distributionpopulation-based genetic algorithm (DPGA) is presented in this paper. The searching capability ofthe algorithm is improved by co... Enlightened by distribution of creatures in natural ecology environment, the distributionpopulation-based genetic algorithm (DPGA) is presented in this paper. The searching capability ofthe algorithm is improved by competition between distribution populations to reduce the search zone.This method is applied to design of optimal parameters of PID controllers with examples, and thesimulation results show that satisfactory performances are obtained. 展开更多
关键词 遗传算法 PID控制器 优化设计 参数设置
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A Novel Evolutionary-Fuzzy Control Algorithm for Complex Systems 被引量:1
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作者 王攀 徐承志 +1 位作者 冯珊 徐爱华 《Journal of Systems Engineering and Electronics》 SCIE EI CSCD 2002年第3期52-60,共9页
This paper presents an adaptive fuzzy control scheme based on modified genetic algorithm. In the control scheme, genetic algorithm is used to optimze the nonlinear quantization functions of the controller and some key... This paper presents an adaptive fuzzy control scheme based on modified genetic algorithm. In the control scheme, genetic algorithm is used to optimze the nonlinear quantization functions of the controller and some key parameters of the adaptive control algorithm. Simulation results show that this control scheme has satisfactory performance in MIMO systems, chaotic systems and delay systems. 展开更多
关键词 Modified genetic algorithm Nonlinear quantization factor Adaptive fuzzy controller ITAE index Complex systems.
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ACS algorithm-based adaptive fuzzy PID controller and its application to CIP-I intelligent leg 被引量:2
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作者 谭冠政 窦红权 《Journal of Central South University of Technology》 2007年第4期528-536,共9页
Based on the ant colony system (ACS) algorithm and fuzzy logic control, a new design method for optimal fuzzy PID controller was proposed. In this method, the ACS algorithm was used to optimize the input/output scal... Based on the ant colony system (ACS) algorithm and fuzzy logic control, a new design method for optimal fuzzy PID controller was proposed. In this method, the ACS algorithm was used to optimize the input/output scaling factors of fuzzy PID controller to generate the optimal fuzzy control rules and optimal real-time control action on a given controlled object. The designed controller, called the Fuzzy-ACS PID controller, was used to control the CIP-Ⅰ intelligent leg. The simulation experiments demonstrate that this controller has good control performance. Compared with other three optimal PID controllers designed respectively by using the differential evolution algorithm, the real-coded genetic algorithm, and the simulated annealing, it was verified that the Fuzzy-ACS PID controller has better control performance. Furthermore, the simulation results also verify that the proposed ACS algorithm has quick convergence speed, small solution variation, good dynamic convergence behavior, and high computation efficiency in searching for the optimal input/output scaling factors. 展开更多
关键词 PID controller fuzzy control ACS algorithm optimal control input/output scaling factors
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Control parameter optimal tuning method based on annealing-genetic algorithm for complex electromechanical system 被引量:1
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作者 贺建军 喻寿益 钟掘 《Journal of Central South University of Technology》 2003年第4期359-363,共5页
A new searching algorithm named the annealing-genetic algorithm(AGA) was proposed by skillfully merging GA with SAA. It draws on merits of both GA and SAA ,and offsets their shortcomings.The difference from GA is that... A new searching algorithm named the annealing-genetic algorithm(AGA) was proposed by skillfully merging GA with SAA. It draws on merits of both GA and SAA ,and offsets their shortcomings.The difference from GA is that AGA takes objective function as adaptability function directly,so it cuts down some unnecessary time expense because of float-point calculation of function conversion.The difference from SAA is that AGA need not execute a very long Markov chain iteration at each point of temperature, so it speeds up the convergence of solution and makes no assumption on the search space,so it is simple and easy to be implemented.It can be applied to a wide class of problems.The optimizing principle and the implementing steps of AGA were expounded. The example of the parameter optimization of a typical complex electromechanical system named temper mill shows that AGA is effective and superior to the conventional GA and SAA.The control system of temper mill optimized by AGA has the optimal performance in the adjustable ranges of its parameters. 展开更多
关键词 genetic algorithm SIMULATED ANNEALING algorithm annealing-genetic algorithm complex electro-mechanical system PARAMETER tuning OPTIMAL control
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The Optimized Design of The Fuzzy Controller(Ⅱ)——the disquisition of optimized triangle subjection function
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作者 ZHANG Jian guo,YIN Hai dong,XIN Ming ying (The Computer Department of Harbin Institute of Technology,Harbin,Heilongjiang,150090,PRC) 《Journal of Northeast Agricultural University(English Edition)》 CAS 2002年第2期158-161,共4页
The subjection function of the fuzzy quantity is bell like,which is on the base of the theory;but during the course of the control,each fuzzy grade should be predigested into a triangle of W=4.
关键词 the subjection function the fuzzy consequence the rules of the fuzzy control optimize TRIANGLE
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Fuzzy-GA PID controller with incomplete derivation and its application to intelligent bionic artificial leg 被引量:8
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作者 谭冠政 李安平 《Journal of Central South University of Technology》 2003年第3期237-243,共7页
An optimal PID controller with incomplete derivation is proposed based on fuzzy inference and the geneticalgorithm, which is called the fuzzy-GA PID controller with incomplete derivation. It consists of the off-line p... An optimal PID controller with incomplete derivation is proposed based on fuzzy inference and the geneticalgorithm, which is called the fuzzy-GA PID controller with incomplete derivation. It consists of the off-line part andthe on-line part. In the off-line part, by taking the overshoot, rise time, and settling time of system unit step re-sponse as the performance indexes and by using the genetic algorithm, a group of optimal PID parameters K*p , Ti* ,and Tj are obtained, which are used as the initial values for the on-line tuning of PID parameters. In the on-linepart, based on K; , Ti* , and T*d and according to the current system error e and its time derivative, a dedicatedprogram is written, which is used to optimize and adjust the PID parameters on line through a fuzzy inference mech-anism to ensure that the system response has optimal dynamic and steady-state performance. The controller has beenused to control the D. C. motor of the intelligent bionic artificial leg designed by the authors. The result of computersimulation shows that this kind of optimal PID controller has excellent control performance and robust performance. 展开更多
关键词 fuzzy inference genetic algorithm fuzzy-GA PID controller INCOMPLETE derivation OFF-LINE on-line INTELLIGENT BIONIC artificial LEG
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Fuzzy controller based on chaos optimal design and its application
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作者 邹恩 李祥飞 张泰山 《Journal of Central South University of Technology》 EI 2004年第1期98-101,共4页
In order to overcome difficulty of tuning parameters of fuzzy controller, a chaos optimal design method based on annealing strategy is proposed. First, apply the chaotic variables to search for parameters of fuzzy con... In order to overcome difficulty of tuning parameters of fuzzy controller, a chaos optimal design method based on annealing strategy is proposed. First, apply the chaotic variables to search for parameters of fuzzy contro-(ller,) and transform the optimal variables into chaotic variables by carrier-wave method. Making use of the intrinsic stochastic property and ergodicity of chaos movement to escape from the local minimum and direct optimization searching within global range, an approximate global optimal solution is obtained. Then, the chaos local searching and optimization based on annealing strategy are cited, the parameters are optimized again within the limits of the approximate global optimal solution, the optimization is realized by means of combination of global and partial chaos searching, which can converge quickly to global optimal value. Finally, the third order system and discrete nonlinear system are simulated and compared with traditional method of fuzzy control. The results show that the new chaos optimal design method is superior to fuzzy control method, and that the control results are of high precision, with no overshoot and fast response. 展开更多
关键词 fuzzy controller chaos algorithm PARAMETER optimal control
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等百分比套筒调节阀开孔布局优化设计方法 被引量:1
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作者 王懿 王勇 +1 位作者 李燕彬 曹艳玲 《石油机械》 北大核心 2025年第3期52-58,共7页
针对目前我国套筒调节阀设计中存在的需要依靠经验、设计周期较长且设计精度较低等问题,基于流量方程、流量特性方程及开孔几何形状方程,推导满足等百分比流量特性的调节阀套筒开孔布局数学模型,随后选用遗传算法进行模型求解。以某一... 针对目前我国套筒调节阀设计中存在的需要依靠经验、设计周期较长且设计精度较低等问题,基于流量方程、流量特性方程及开孔几何形状方程,推导满足等百分比流量特性的调节阀套筒开孔布局数学模型,随后选用遗传算法进行模型求解。以某一水下采油树用等百分比套筒调节阀为例,采用建立的设计方法完成了其套筒开孔布局设计。对比分析结果表明:所设计的调节阀过流面积和满足等百分比要求的理想调节阀过流面积之间的误差不超过4.63%;采用Fluent仿真软件建立调节阀数值模型,对不同开度下套筒阀流体域模型进行仿真,其相对出口流量和相对过流面积的最大相对误差为3.45%。研究成果可为等百分比节流套筒的设计提供一种快速准确的方法和理论支撑。 展开更多
关键词 套筒调节阀 等百分比流量特性 遗传算法 数值仿真 开孔布局优化
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欠约束临时支护机器人几何静力耦合模型及运动控制研究
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作者 刘鹏 朱延 +6 位作者 马宏伟 曹现刚 张旭辉 段学超 周昊晨 乔心州 夏晶 《煤炭科学技术》 北大核心 2025年第8期346-361,共16页
护盾式智能掘进机器人系统有效的解决了煤矿开采中“采掘失衡、采快掘慢”难题。临时支护机器人作为该系统的重要组成部分,尽管在提升作业效率上发挥了重要作用,但由于结构限制,仅能实现竖直方向的升降运动,难以有效应对复杂巷道的临时... 护盾式智能掘进机器人系统有效的解决了煤矿开采中“采掘失衡、采快掘慢”难题。临时支护机器人作为该系统的重要组成部分,尽管在提升作业效率上发挥了重要作用,但由于结构限制,仅能实现竖直方向的升降运动,难以有效应对复杂巷道的临时支护作业。为解决临时支护机器人运动受限难题,设计了一种欠约束临时支护机器人,并提出了一种基于RBF神经网络分块逼近的终端滑模控制方法,以实现欠约束临时支护机器人的高精度运动控制。首先,利用修正的G-K公式对该机器人的自由度进行了分析,针对欠约束临时支护机器人正运动学难以求解问题,建立了几何静力耦合模型,提出了一种改进的蜣螂优化算法,对正/逆几何静力问题进行求解,并对几何静力问题进行了仿真;其次,设计了一种基于RBF神经网络分块逼近的终端滑模控制器。针对末端支护平台参数矩阵的不确定,使用多组RBF神经网络对其逼近,根据自适应律在线调整权值,实现了动力学模型的重构,并设计鲁棒项消除模型重构误差和外部扰动。为缓解控制器存在的抖振问题,设计了模糊系统自适应逼近切换增益来代替鲁棒项,并利用Lyapunov准则证明了控制系统的稳定性。最后,以平面圆轨迹为例进行仿真。结果表明:改进的蜣螂优化算法对正/逆运动学单点验证精度均小于10-20,连续运动学求解结果良好。使用RBF神经网络分块逼近的终端滑模控制方法对预定轨迹的位置跟踪误差为0~0.011m,姿态跟踪误差为0~0.0031°,与RBF神经网络整体逼近和PD控制相比最大跟踪误差分别减少了99.0%、95.5%,均方根误差分别减少了98.3%、96.5%。证明了基于RBF神经网络分块逼近的终端滑模控制方法能进一步提高欠约束临时支护机器人的运动控制精度,在受到外界干扰的情况下具有更强的鲁棒性。 展开更多
关键词 欠约束并联机器人 临时支护 运动控制 优化算法 神经网络 模糊系统
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利用模糊关联规则挖掘和遗传算法的工业产品设计优化方法
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作者 张晴 李丛 高广银 《西南大学学报(自然科学版)》 北大核心 2025年第7期207-218,共12页
在工业产品开发流程的初始阶段,需要处理大量的多维度工业数据。然而,这个过程中的复杂性和不确定性容易导致模糊前端(FFE)问题,增加产品设计的难度。为解决这一问题,避免产品设计中的缺陷,提出一种多层人工智能产品设计方法,该方法结... 在工业产品开发流程的初始阶段,需要处理大量的多维度工业数据。然而,这个过程中的复杂性和不确定性容易导致模糊前端(FFE)问题,增加产品设计的难度。为解决这一问题,避免产品设计中的缺陷,提出一种多层人工智能产品设计方法,该方法结合了多层人工智能技术:大数据分析、基于递归关联规则的模糊推理系统(RAFIS)以及Mamdani模糊推理系统。所提出的方法通过将模糊关联规则挖掘(FARM)和遗传算法(GA)纳入RAFIS,以缩小客户属性和设计参数之间的差距。首先,在FFE阶段,组织数据收集和管理,然后将数据集输入FARM和GA以获取最佳模糊规则和隶属函数。随后,利用这些结果建立用于定制产品设计特征的Mamdani模糊推理系统。通过优化Mamdani推理系统中的参数(包括隶属函数的类型、分区和范围),实现产品定制设计。实验以电动滑板车为例进行应用分析,并采用模糊综合评价方法评估设计方案。结果表明两种设计方案均获得较高满意度,验证了该方法的有效性和可行性。 展开更多
关键词 人工智能 产品设计 模糊关联规则挖掘 遗传算法 大数据分析
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繁忙终端区连续下降运行的4D轨迹预测
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作者 王超 陈含露 +1 位作者 秦宏坤 刘博 《西南交通大学学报》 北大核心 2025年第3期722-730,共9页
为在繁忙终端区实施连续下降运行(CDO)并估算其二氧化碳减排成效,提出一种基于数据驱动和最优控制理论相结合的连续下降运行4D轨迹预测方法.首先,通过近邻传播轨迹聚类方法对典型进场水平路径进行识别;然后,以典型进场水平路径为依据,... 为在繁忙终端区实施连续下降运行(CDO)并估算其二氧化碳减排成效,提出一种基于数据驱动和最优控制理论相结合的连续下降运行4D轨迹预测方法.首先,通过近邻传播轨迹聚类方法对典型进场水平路径进行识别;然后,以典型进场水平路径为依据,分别以最小时间和最小燃油为目标,建立垂直剖面连续下降运行多阶段最优控制模型,并提出一种基于遗传算法的最优控制模型求解新方法(GACDO);最后,利用终端区实际轨迹数据,开展典型进场水平路径识别和连续下降运行模式下的4D轨迹预测与减排收益比较实验.结果表明:该方法能获得理想的连续下降运行4D轨迹;以最小时间为优化目标时,平均运行时间和二氧化碳排放分别减少26%和8%;以最小油耗为优化目标时,运行时间和二氧化碳排放分别减少17%和20%. 展开更多
关键词 4D轨迹预测 连续下降运行 遗传算法 轨迹聚类 最优控制
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