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Optimization of laser cladding FeMnSiCrNi memory alloy coating process based on response surface model and NSGA-2 algorithm
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作者 Yu Zhang Guang-lei Liu +4 位作者 Shu-cong Liu Wen-chao Xue Wei-mei Chen Hai-xia Liu Jian-zhong Zhou 《China Foundry》 2025年第3期311-322,共12页
To solve the problems of deformation,micro-cracks,and residual tensile stress in laser cladding coatings,the technique of laser cladding with Fe-based memory alloy can be considered.However,the process of in-situ synt... To solve the problems of deformation,micro-cracks,and residual tensile stress in laser cladding coatings,the technique of laser cladding with Fe-based memory alloy can be considered.However,the process of in-situ synthesis of Fe-based memory alloy coatings is extremely complex.At present,there is no clear guidance scheme for its preparation process,which limits its promotion and application to some extent.Therefore,in this study,response surface methodology(RSM)was used to model the response surface between the target values and the cladding process parameters.The NSGA-2 algorithm was employed to optimize the process parameters.The results indicate that the composite optimization method consisting of RSM and the NSGA-2 algorithm can establish a more accurate model,with an error of less than 4.5%between the predicted and actual values.Based on this established model,the optimal scheme for process parameters corresponding to different target results can be rapidly obtained.The prepared coating exhibits a uniform structure,with no defects such as pores,cracks,and deformation.The surface roughness and microhardness of the coating are enhanced,the shaping quality of the coating is effectively improved,and the electrochemical corrosion performance of the coating in 3.5%NaCl solution is obviously better than that of the substrate,providing an important guide for engineering applications. 展开更多
关键词 laser cladding shape memory alloy coating response surface method process parameters optimization nsga-2 algorithm
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2-D mini mumfuzzy entropy method of image thresholding based on genetic algorithm 被引量:1
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作者 张兴会 刘玲 《Journal of Systems Engineering and Electronics》 SCIE EI CSCD 2005年第3期557-560,共4页
A new image thresholding method is introduced, which is based on 2-D histgram and minimizing the measures of fuzziness of an input image. A new definition of fuzzy membership function is proposed, it denotes the chara... A new image thresholding method is introduced, which is based on 2-D histgram and minimizing the measures of fuzziness of an input image. A new definition of fuzzy membership function is proposed, it denotes the characteristic relationship between the gray level of each pixel and the average value of its neighborhood. When the threshold is not located at the obvious and deep valley of the histgram, genetic algorithm is devoted to the problem of selecting the appropriate threshold value. The experimental results indicate that the proposed method has good performance. 展开更多
关键词 image thresholding 2-D fuzzy entropy genetic algorithm.
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Type-2 Fuzzy Logic Controllers Based Genetic Algorithm for the Position Control of DC Motor 被引量:1
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作者 Mohammed Zeki Al-Faiz Mohammed S. Saleh Ahmed A. Oglah 《Intelligent Control and Automation》 2013年第1期108-113,共6页
Type-2 fuzzy logic systems have recently been utilized in many control processes due to their ability to model uncertainty. This research article proposes the position control of (DC) motor. The proposed algorithm of ... Type-2 fuzzy logic systems have recently been utilized in many control processes due to their ability to model uncertainty. This research article proposes the position control of (DC) motor. The proposed algorithm of this article lies in the application of a genetic algorithm interval type-2 fuzzy logic controller (GAIT2FLC) in the design of fuzzy controller for the position control of DC Motor. The entire system has been modeled using MATLAB R11a. The performance of the proposed GAIT2FLC is compared with that of its corresponding conventional genetic algorithm type-1 FLC in terms of several performance measures such as rise time, peak overshoot, settling time, integral absolute error (IAE) and integral of time multiplied absolute error (ITAE) and in each case, the proposed scheme shows improved performance over its conventional counterpart. Extensive simulation studies are conducted to compare the response of the given system with the conventional genetic algorithm type-1 fuzzy controller to the response given with the proposed GAIT2FLC scheme. 展开更多
关键词 Type-2 FUZZY LOGIC CONTROLLER genetic algorithm DC MOTOR
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An Integrated Use of Advanced T2 Statistics and Neural Network and Genetic Algorithm in Monitoring Process Disturbance 被引量:1
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作者 Xiuhong WANG 《Journal of Software Engineering and Applications》 2009年第5期335-343,共9页
Integrated use of statistical process control (SPC) and engineering process control (EPC) has better performance than that by solely using SPC or EPC. But integrated scheme has resulted in the problem of “Window of O... Integrated use of statistical process control (SPC) and engineering process control (EPC) has better performance than that by solely using SPC or EPC. But integrated scheme has resulted in the problem of “Window of Opportunity” and autocorrelation. In this paper, advanced T2 statistics model and neural networks scheme are combined to solve the above problems: use T2 statistics technique to solve the problem of autocorrelation;adopt neural networks technique to solve the problem of “Window of Opportunity” and identification of disturbance causes. At the same time, regarding the shortcoming of neural network technique that its algorithm has a low speed of convergence and it is usually plunged into local optimum easily. Genetic algorithm was proposed to train samples in this paper. Results of the simulation ex-periments show that this method can detect the process disturbance quickly and accurately as well as identify the dis-turbance type. 展开更多
关键词 T2 STATISTICS Neural Networks Statistical PROCESS CONTROL Engineering PROCESS CONTROL genetic algorithm
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Genetic Based Approach for Optimal Power and Channel Allocation to Enhance D2D Underlaied Cellular Network Capacity in 5G 被引量:1
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作者 Ahmed.A.Rosas Mona Shokair M.I.Dessouky 《Computers, Materials & Continua》 SCIE EI 2022年第8期3751-3762,共12页
With the obvious throughput shortage in traditional cellular radio networks,Device-to-Device(D2D)communications has gained a lot of attention to improve the utilization,capacity and channel performance of nextgenerati... With the obvious throughput shortage in traditional cellular radio networks,Device-to-Device(D2D)communications has gained a lot of attention to improve the utilization,capacity and channel performance of nextgeneration networks.In this paper,we study a joint consideration of power and channel allocation based on genetic algorithm as a promising direction to expand the overall network capacity for D2D underlaied cellular networks.The genetic based algorithm targets allocating more suitable channels to D2D users and finding the optimal transmit powers for all D2D links and cellular users efficiently,aiming to maximize the overall system throughput of D2D underlaied cellular network with minimum interference level,while satisfying the required quality of service QoS of each user.The simulation results show that our proposed approach has an advantage in terms of maximizing the overall system utilization than fixed,random,BAT algorithm(BA)and Particle Swarm Optimization(PSO)based power allocation schemes. 展开更多
关键词 5G D2D communication spectrum allocation power allocation genetic algorithm optimization BAT-optimization particle swarm optimization
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Simulation of Flux Distribution in Central Metabolism of Saccharo-myces cerevisiae by Hybridized Genetic Algorithm
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作者 张慧敏 姚善泾 《Chinese Journal of Chemical Engineering》 SCIE EI CAS CSCD 2007年第2期150-156,共7页
A scheme of investigating the intracellular metabolic fluxes in central metabolism of Saccharomyces cerevisiae based on isotope model and tracer experiment was developed. The metabolic model applied in this study incl... A scheme of investigating the intracellular metabolic fluxes in central metabolism of Saccharomyces cerevisiae based on isotope model and tracer experiment was developed. The metabolic model applied in this study includes the Embden-Meyerhof-Parnas pathway,the pentose phosphate pathway,the tricarboxylic acid cycle,CO2 anaplerotic reactions,ethanol and acetate formation,and pathways involved in amino acid synthesis. The approach of hybridized genetic algorithm combined with the sequential simplex technique was used to optimize a quadratic error function without the requirement of the information on the partial derivatives. The impact of some key pa-rameters on the algorithm was studied. This approach was proved to be rapid and numerically stable in the analysis of the central metabolism of S.cerevisiae. 展开更多
关键词 Saccharomyces cerevisiae metabolic flux hybridized genetic algorithm 2D NMR central metabolism
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Development and Application of a Modified Genetic Algorithm for Estimating Parameters in GMA Models
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作者 José A. Hormiga Carlos González-Alcón Néstor V. Torres 《Applied Mathematics》 2014年第16期2447-2457,共11页
In this work we introduce a modified version of the simple genetic algorithm (MGA) and will show the results of its application to two GMA power law models (a general theoretical branched pathway system and a mathemat... In this work we introduce a modified version of the simple genetic algorithm (MGA) and will show the results of its application to two GMA power law models (a general theoretical branched pathway system and a mathematical model of the amplification and responsiveness of the JAK2/STAT5 pathway representing an actual, experimentally studied system). The two case studies serve to illustrate the utility and potentialities of the MGA method for concerning parameter estimation in complex models of biological significance. The analysis of the results obtained from the application of the MGA algorithm allows an evaluation of the potentialities and shortcomings of the proposed algorithm when compared with other parameter estimation algorithm such as the simple genetic algorithm (SGA) and the simulated annealing (SA). MGA shows better performance in both studied cases than SGA and SA, either in the presence or absence of noise. It is suggested that these advantages are due to the fact that the objective function definition in the MGA could include the experimental error as a weight factor, thus minimizing the distance between the data and the predicted value. Actually, MGA is slightly slower that the SGA and the SA, but this limitation is compensated by its greater efficiency in finding objective values closer to the global optimum. Finally, MGA can lead to an early local optimum, but this shortcoming may be prevented by providing a great population diversity through the insertion of different selection processes. 展开更多
关键词 Parameter Estimation genetic algorithms GMA MODELS MODEL Calibration INVERSION Methods JAK2/STAT5 PATHWAY MODEL
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MAV-UAV combat organization's force formation plan generation based on NSGA-Ⅲ
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作者 ZHONG Yun WAN Lujun ZHANG Jieyong 《Journal of Systems Engineering and Electronics》 2026年第1期307-317,共11页
Manned aerial vehicle-unmanned aerial vehicle(MAV-UAV)combat organization is a MAV-UAV combat collective formed from the perspective of organization design theory and methodology,and the generation of force formation ... Manned aerial vehicle-unmanned aerial vehicle(MAV-UAV)combat organization is a MAV-UAV combat collective formed from the perspective of organization design theory and methodology,and the generation of force formation plan is a key step in the organizational planning.Based on the description of the problem and the definition of organizational elements,the matching model of platform-target attack wave is constructed to minimize the redundancy of command and decision-making capability,resource capability and the number of platforms used.Based on the non-dominated sorting genetic algorithmⅢ(NSGA-Ⅲ)framework,which includes encoding/decoding method and constraint handling method,the generation model of organizational force formation plan is solved,and the effectiveness and superiority of the algorithm are verified by simulation experiments. 展开更多
关键词 manned-unmanned aerial vehicle combat organization force formation plan command and decision-making capability resource capability non-dominated sorting genetic algorithmⅢ(nsga-Ⅲ)
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Models for Location Inventory Routing Problem of Cold Chain Logistics with NSGA-Ⅱ Algorithm 被引量:1
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作者 郑建国 李康 伍大清 《Journal of Donghua University(English Edition)》 EI CAS 2017年第4期533-539,共7页
In this paper,a novel location inventory routing(LIR)model is proposed to solve cold chain logistics network problem under uncertain demand environment. The goal of the developed model is to optimize costs of location... In this paper,a novel location inventory routing(LIR)model is proposed to solve cold chain logistics network problem under uncertain demand environment. The goal of the developed model is to optimize costs of location,inventory and transportation.Due to the complex of LIR problem( LIRP), a multi-objective genetic algorithm(GA), non-dominated sorting in genetic algorithm Ⅱ( NSGA-Ⅱ) has been introduced. Its performance is tested over a real case for the proposed problems. Results indicate that NSGA-Ⅱ provides a competitive performance than GA,which demonstrates that the proposed model and multi-objective GA are considerably efficient to solve the problem. 展开更多
关键词 cold chain logistics MULTI-OBJECTIVE location inventory routing problem(LIRP) non-dominated sorting in genetic algorithm Ⅱ(nsga-Ⅱ)
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基于改进遗传算法的2型糖尿病中医药有效处方推荐方法研究 被引量:1
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作者 刘红萍 杨杰 +6 位作者 庞国明 李鹏辉 邢颖 吴敏 温宵宵 李洪皎 文天才 《中华中医药学刊》 北大核心 2025年第1期39-43,I0009,共6页
目的改进遗传算法创新推荐度模型,以2型糖尿病(T2DM)电子病历数据为基础进行核心处方挖掘及有效处方推荐。方法基于真实世界电子病历数据,构建T2DM患者有效处方集及不同证型原始处方集数据库;对遗传算法进行改进,优化适应度函数的构建,... 目的改进遗传算法创新推荐度模型,以2型糖尿病(T2DM)电子病历数据为基础进行核心处方挖掘及有效处方推荐。方法基于真实世界电子病历数据,构建T2DM患者有效处方集及不同证型原始处方集数据库;对遗传算法进行改进,优化适应度函数的构建,使提取出的核心有效处方朝着有效处方集的方向进化;基于核心有效处方与原始处方集的相似度关系,创新推荐度模型,通过遍历不同证型原始处方集进行处方推荐度挖掘。结果共使用有效诊疗标准的处方17712条,提取的核心有效处方中包含中药37种;最终挖掘出满足“推荐度≥85%”的处方26条,最大推荐度为97.26%。结论研究改进遗传算法提高了对中药处方集的特征提取和全局搜索能力,并通过提出新的推荐度模型进行临床处方决策推荐,提高了电子病历数据的利用率。 展开更多
关键词 遗传算法 核心处方 处方推荐 真实世界数据 2型糖尿病
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基于核岭回归多参数优化的CO_(2)驱最小混相压力模型 被引量:1
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作者 李佳旻 张艺钟 +2 位作者 张茂林 秦博文 杨宇新 《岩性油气藏》 北大核心 2025年第6期172-179,共8页
结合细管实验数据,采用灰色关联度法对影响CO_(2)驱油效率的主控因素进行识别与权重赋值,利用核岭回归(KRR)算法对参数集进行训练,并用遗传算法与网格搜索法优化模型超参数,建立了最小混相压力(MMP)预测模型。研究结果表明:(1)影响CO_(2... 结合细管实验数据,采用灰色关联度法对影响CO_(2)驱油效率的主控因素进行识别与权重赋值,利用核岭回归(KRR)算法对参数集进行训练,并用遗传算法与网格搜索法优化模型超参数,建立了最小混相压力(MMP)预测模型。研究结果表明:(1)影响CO_(2)驱油的主控因素包括油藏温度、原油组分及注入气组成,纯CO_(2)注入条件下关联度排序依次为:T>x(C_(2)-C_(4))>M(C_(7+))>x(C5-C6)>x(CH_(4)+N_(2))。含杂质CO_(2)注入条件下,杂质类型与含量对MMP的影响程度排序为:x(N_(2))>x(C_(1))>x(C_(2)-C_(4))_(inj)>x(H_(2)S)。(2)相较Ridge模型和ElasticNet模型,KRR模型预测精度更高、误差更小。其中,KRR-GA模型综合性能最优,其测试集总平均绝对百分比误差(EMAP)为4.11%,均方根误差(ERMS)为0.856 MPa,决定系数(R^(2))为0.981。(3)KRR-GA模型对重质原油油藏及常规黑油油藏表现出更优的适用性,而KRR-GS模型更适用于注入气中有较高H_(2)S含量的轻质原油油藏。 展开更多
关键词 核岭回归(KRR) 最小混相压力(MMP) CO_(2)驱油 灰色关联度法 遗传算法 油藏温度 原油组分 注入气组成
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超临界相CO_(2)输送管道经济流速计算方法 被引量:1
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作者 程昱涵 李长俊 +3 位作者 贾文龙 高谦 付仕雄 张雯琴 《油气储运》 北大核心 2025年第5期520-527,共8页
【目的】碳捕集、利用及封存技术(Carbon Capture,Utilization and Storage,CCUS)被广泛视为温室气体减排最佳解决方案之一,而管道输送是大规模、长距离输送CO_(2)的最佳选择。在超临界相CO_(2)管道输送过程中,当管输压力低于临界压力(7... 【目的】碳捕集、利用及封存技术(Carbon Capture,Utilization and Storage,CCUS)被广泛视为温室气体减排最佳解决方案之一,而管道输送是大规模、长距离输送CO_(2)的最佳选择。在超临界相CO_(2)管道输送过程中,当管输压力低于临界压力(7.38 MPa)时,CO_(2)会发生相变,导致管道发生冲蚀,影响CO_(2)的稳定输送和管道的安全运行。管道流速会影响CO_(2)管输压力,流速过低会增加压降,导致压力低于临界点,流速过高则会增大摩擦损失,增加能耗。同时,流速与管径密切相关,影响管道建设费用与运行费用。因此,有必要研究超临界相CO_(2)输送管道的经济流速。【方法】以“增压站+管道”组合为研究对象,建立了计算CO_(2)管道经济流速的优化模型。模型以管道年投资总费用为目标函数,约束条件以保持单一相态输送的二氧化碳相态约束为基础,包含管道沿程压力约束、管道强度约束、管道稳定性约束。利用遗传算法对优化模型进行求解。【结果】通过设定一系列经济参数,绘制了超临界相CO_(2)输送管道各标准管径在输量1000~10000 t/d和增压站间距50~150 km情况下的管道年投资总费用与经济流速范围。在输量较小时,管道年投资总费用随管径增大呈现线性增加的趋势,输量不断增加时呈现先降低后升高的趋势;当管径一定时,输量越大其管道年投资总费用越大;管道经济流速随着输量增加呈现波动上升的趋势。同时分析了管材与电价对经济流速的影响。【结论】超临界相CO_(2)输送管道经济流速范围为1.10~2.35 m/s;电价显著影响经济流速,管道材料对经济流速的影响较弱。通过改变实例的运行参数,设计出9种运行方案,运用模型进行评价和优选,得到最优方案,验证了经济流速的准确性。研究结果可为管道优化设计提供参考。 展开更多
关键词 CO_(2)管道 超临界相 经济流速 数学模型 遗传算法
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基于生成对抗网络(GAN)和NSGA-2遗传算法的汉口滨江居住区采光优化研究 被引量:1
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作者 王孝鑫 李竞一 《建筑技艺》 2021年第9期84-88,共5页
随着人工智能技术在各个领域的广泛运用,越来越多的设计人员开始尝试将人工智能技术的成果运用到城市或建筑设计当中。通过汉口滨江居住区城市数据和人工智能技术控制区域三维模型的合理生成,并对整体区域建筑环境进行环境模拟,达到居... 随着人工智能技术在各个领域的广泛运用,越来越多的设计人员开始尝试将人工智能技术的成果运用到城市或建筑设计当中。通过汉口滨江居住区城市数据和人工智能技术控制区域三维模型的合理生成,并对整体区域建筑环境进行环境模拟,达到居住区布局及造型的优化设计的目的,最后通过优化设计案例为设计师提供设计建议。 展开更多
关键词 深度学习 生成对抗网络 nsga-2遗传算法 居住区改造 日照模拟 优化设计
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基于响应曲面法和NSGA2的内斜齿轮成形磨削参数优化
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作者 金明选 苏建新 +1 位作者 张祥 李明宇 《机电工程》 北大核心 2025年第9期1649-1658,共10页
内斜齿轮是斜齿行星减速器的重要传动件,其表面质量直接影响减速器的运动精度和可靠性。为提升齿轮成形磨削加工的质量和效率,确定最佳成形磨削工艺参数,对内斜齿轮成形磨削过程中的磨削工艺参数进行了优化研究。首先,建立了磨齿温度场... 内斜齿轮是斜齿行星减速器的重要传动件,其表面质量直接影响减速器的运动精度和可靠性。为提升齿轮成形磨削加工的质量和效率,确定最佳成形磨削工艺参数,对内斜齿轮成形磨削过程中的磨削工艺参数进行了优化研究。首先,建立了磨齿温度场热量分配数学模型,并依据有限元仿真得到了磨削温度数据;然后,结合响应曲面法分析了成形磨削过程中不同工艺参数对磨削温度的影响,将磨削温度设成响应性能指标,建立了相应的响应回归模型;最后,以磨削温度、磨削效率和磨削质量为优化目标,利用第二代非支配排序遗传算法(NSGA2)进行了多目标工艺参数的优化,并进行了实验验证。研究结果表明:在湿磨工况下,磨削工艺参数对磨削温度的影响排序依次为a_(p)>v_(w)>v_(s);磨削温度与磨削深度、进给速度呈正相关,与砂轮线速度呈负相关;在保证成形磨削温度的前提下,磨削加工过程中使用优化后的最佳磨削工艺参数得到的粗磨阶段加工时间减少了50%,精磨阶段左右齿面偏差分别减少了46.7%和26.6%。由此证明了优化得到的最佳磨削工艺参数是合理有效的,对磨削过程中磨削参数的选择具有指导意义。 展开更多
关键词 齿轮传动 斜齿行星减速器 成形磨削 响应曲面法 第二代非支配排序遗传算法 磨削工艺参数优化 磨削温度
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基于改进NSGA-Ⅱ算法的航空器滑行路径多目标优化
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作者 钟庆伟 唐浩铭 +3 位作者 庾映雪 张永祥 姚俊杰 潘明思语 《科学技术与工程》 北大核心 2025年第20期8737-8744,共8页
随着全球航空业的快速发展,机场场面航空器滑行管理难度增加,如何在保障安全和提升效率的同时减少对环境的影响变得尤为重要。针对该问题,以预防滑行路径冲突为基础约束条件,以滑行时间最短和二氧化碳(carbon dioxide,CO_(2))排放量最... 随着全球航空业的快速发展,机场场面航空器滑行管理难度增加,如何在保障安全和提升效率的同时减少对环境的影响变得尤为重要。针对该问题,以预防滑行路径冲突为基础约束条件,以滑行时间最短和二氧化碳(carbon dioxide,CO_(2))排放量最小为优化目标建立混合整数线性优化模型,并设计非支配排序遗传算法Ⅱ(non-dominated sorting genetic algorithmⅡ,NSGA-Ⅱ)进行动态求解。最后,以中国某枢纽机场为算例背景,借助Python语言实现NSGA-Ⅱ算法,并与商业优化求解器Gurobi进行对比。计算结果表明:航空器数量为14架次时,与优化前相比,总滑行时间减少约17.46%,CO_(2)排放量降低约18.35%;NSGA-Ⅱ算法得到的可行解与Gurobi所求最优解间的距离为1.083%,但NSGA-Ⅱ的求解时间相对减少95.0%。同时,通过多个算例测试表明,NSGA-Ⅱ算法在处理大规模多目标路径优化问题时具有显著优势。所提出的优化方案可有效提升机场场面运营效率并减少CO_(2)排放。 展开更多
关键词 滑行路径优化 多目标优化 非支配排序遗传算法(nsga-Ⅱ) 数学求解器 动态优化 CO_(2)排放
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多目标遗传算法NSGA-Ⅱ在某双前桥转向机构优化设计中的应用 被引量:11
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作者 周红妮 冯樱 +1 位作者 胡群 赵慧勇 《机械设计与制造》 北大核心 2015年第11期140-143,共4页
针对东风某双前桥转向重型汽车在使用中存在的轮胎异常磨损问题,利用ADAMS/View软件建立了样车双前桥转向机构参数化仿真模型,基于选择的设计变量与目标函数,在iSIGHT软件中通过集成ADAMS/View模型,对设计变量进行了DOE分析,并利用改进... 针对东风某双前桥转向重型汽车在使用中存在的轮胎异常磨损问题,利用ADAMS/View软件建立了样车双前桥转向机构参数化仿真模型,基于选择的设计变量与目标函数,在iSIGHT软件中通过集成ADAMS/View模型,对设计变量进行了DOE分析,并利用改进的非支配排序遗传算法NSGA-Ⅱ实现了双前桥转向机构的多目标优化,根据Pareto最优解得到仿真结果表明:优化后各车轮转角误差大大减小,可有效解决车轮异常磨损问题。利用多目标遗传算法和计算机仿真集成技术对转向机构进行优化设计,可为今后汽车系统的设计、开发提供新的有效途径。 展开更多
关键词 双前桥转向机构 多目标优化设计 nsga-Ⅱ遗传算法 iSIGHT集成 genetic algorithm nsga-
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Ir_n(n=2-25)团簇基态结构的遗传算法研究 被引量:10
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作者 张材荣 许广济 +1 位作者 寇生中 陈宏善 《原子与分子物理学报》 CAS CSCD 北大核心 2006年第1期122-126,共5页
用遗传算法结合Gupta紧束缚模型势研究了Irn(n=2-25)团簇的基态结构.分析了Irn(n=2-25)团簇的基态结构随团簇尺寸的变化规律.计算结果表明,Irn(n=2-25)团簇的每个原子的平均束缚能和平均第一近邻随团簇尺寸的增加而增大,以总束缚能的二... 用遗传算法结合Gupta紧束缚模型势研究了Irn(n=2-25)团簇的基态结构.分析了Irn(n=2-25)团簇的基态结构随团簇尺寸的变化规律.计算结果表明,Irn(n=2-25)团簇的每个原子的平均束缚能和平均第一近邻随团簇尺寸的增加而增大,以总束缚能的二阶差分为判据,Irn(n=2-25)团簇的幻数是4、7、9、13、15、19、23. 展开更多
关键词 Irn(n=225)团簇 遗传算法 GUPTA势
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具有最大输出功率的CO_2激光器谐振腔 被引量:4
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作者 程成 马养武 《激光技术》 CAS CSCD 北大核心 2002年第5期346-349,共4页
提出了一种优化设计激光器谐振腔参数的新方法。应用遗传算法 ,以最大输出激光功率为目标函数 ,对典型CO2 激光器谐振腔和放电管参数进行了优化 ,给出了谐振腔的 3个优化参数 :放电管直径、谐振腔凹面反射镜曲率半径和出射镜透射率。对... 提出了一种优化设计激光器谐振腔参数的新方法。应用遗传算法 ,以最大输出激光功率为目标函数 ,对典型CO2 激光器谐振腔和放电管参数进行了优化 ,给出了谐振腔的 3个优化参数 :放电管直径、谐振腔凹面反射镜曲率半径和出射镜透射率。对于 1 .2m长谐振腔 ,优化设计的基模激光功率可从原先的 55W提高到 89W ,实际测量提高到 74W。 展开更多
关键词 最大输出功率 CO2激光 谐振腔 遗传算法 优化
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基于改进遗传算法的最大2维熵图像分割 被引量:11
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作者 李丽宏 华国光 《激光技术》 CAS CSCD 北大核心 2019年第1期119-124,共6页
为了解决传统最大2维熵分割算法计算量大、耗时较多等缺陷,提出一种基于改进遗传算法的最大2维熵图像分割法。通过对遗传算法变异操作方式进行改进,提高遗传算法寻找最大2维熵分割阈值的速度,加速分割算法对图像的分割,并进行了仿真实... 为了解决传统最大2维熵分割算法计算量大、耗时较多等缺陷,提出一种基于改进遗传算法的最大2维熵图像分割法。通过对遗传算法变异操作方式进行改进,提高遗传算法寻找最大2维熵分割阈值的速度,加速分割算法对图像的分割,并进行了仿真实验验证。结果表明,改进模型的运行时间被压缩到了0.95s,远远低于传统的最大2维熵分割法。改进的分割方法实现了分割效率的提高,同时也保证了图像的分割精度。 展开更多
关键词 图像处理 最大2维熵 遗传算法 变异操作
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结构振动的H_2/H_∞混合最优控制 被引量:3
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作者 杜耀武 史习智 《振动工程学报》 EI CSCD 1999年第1期103-108,共6页
讨论了柔性结构振动的混合H2/H∞最优控制问题、结构振动控制器的鲁棒稳定性转化为H∞最优控制问题,以及振动控制的最优二次性能转化为H2最优控制问题,并提出了利用遗传算法求解H2/H∞的方法。通过结构振动主动控制的计算... 讨论了柔性结构振动的混合H2/H∞最优控制问题、结构振动控制器的鲁棒稳定性转化为H∞最优控制问题,以及振动控制的最优二次性能转化为H2最优控制问题,并提出了利用遗传算法求解H2/H∞的方法。通过结构振动主动控制的计算机仿真,表明用遗传优化算法解H2/H∞最优控制是有效的。仿真结果还表明,H2和H∞性能指标是相互矛盾的,本方法能有效地处理H2和H∞性能指标的折衷问题,以得到闭环系统的鲁棒稳定性和良好的时域性能。 展开更多
关键词 结构振动 振动主动控制 H2/H∞ 最优控制
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