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Cognitive radio resource allocation based on coupled chaotic genetic algorithm 被引量:1
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作者 俎云霄 周杰 曾昶畅 《Chinese Physics B》 SCIE EI CAS CSCD 2010年第11期704-711,共8页
A coupled chaotic genetic algorithm for cognitive radio resource allocation which is based on genetic algorithm and coupled Logistic map is proposed. A fitness function for cognitive radio resource allocation is provi... A coupled chaotic genetic algorithm for cognitive radio resource allocation which is based on genetic algorithm and coupled Logistic map is proposed. A fitness function for cognitive radio resource allocation is provided. Simulations are conducted for cognitive radio resource allocation by using the coupled chaotic genetic algorithm, simple genetic algorithm and dynamic allocation algorithm respectively. The simulation results show that, compared with simple genetic and dynamic allocation algorithm, coupled chaotic genetic algorithm reduces the total transmission power and bit error rate in cognitive radio system, and has faster convergence speed. 展开更多
关键词 cognitive radio chaotic genetic algorithm resource allocation coupled Logistic map
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Parameter estimation for chaotic systems using the cuckoo search algorithm with an orthogonal learning method 被引量:14
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作者 李向涛 殷明浩 《Chinese Physics B》 SCIE EI CAS CSCD 2012年第5期113-118,共6页
We study the parameter estimation of a nonlinear chaotic system,which can be essentially formulated as a multidimensional optimization problem.In this paper,an orthogonal learning cuckoo search algorithm is used to es... We study the parameter estimation of a nonlinear chaotic system,which can be essentially formulated as a multidimensional optimization problem.In this paper,an orthogonal learning cuckoo search algorithm is used to estimate the parameters of chaotic systems.This algorithm can combine the stochastic exploration of the cuckoo search and the exploitation capability of the orthogonal learning strategy.Experiments are conducted on the Lorenz system and the Chen system.The proposed algorithm is used to estimate the parameters for these two systems.Simulation results and comparisons demonstrate that the proposed algorithm is better or at least comparable to the particle swarm optimization and the genetic algorithm when considering the quality of the solutions obtained. 展开更多
关键词 cuckoo search algorithm chaotic system parameter estimation orthogonal learning
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Stabilization of Chaotic Time Series by Proportional Pulse in the System Variable Based on Genetic Algorithm 被引量:1
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作者 Qing Li Deling Zheng Jianlong Zhou(Information Engineering School, University of Science and Technology Beijing, Beijing 100083, China)(Handan iron and Steel Co., Handan 056015, China) 《International Journal of Minerals,Metallurgy and Materials》 SCIE EI CAS CSCD 1999年第3期228-229,共2页
The PPSV (Proportional Pulse in the System Variable) algorithm is a convenient method for the stabilization of the chaotic time series. It does not require any previous knowledge of the system. The PPSV method also ha... The PPSV (Proportional Pulse in the System Variable) algorithm is a convenient method for the stabilization of the chaotic time series. It does not require any previous knowledge of the system. The PPSV method also has a shortcoming, that is, the determination off. is a procedure by trial and error, since it lacks of optimization. In order to overcome the blindness, GA (Genetic Algorithm), a search algorithm based on the mechanics of natural selection and natural genetics, is used to optimize the λi The new method is named as GAPPSV algorithm. The simulation results show that GAPPSV algorithm is very efficient because the control process is short and the steady-state error is small. 展开更多
关键词 STABILIZATION chaotic time series genetic algorithm
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Artificial Bee Colony Algorithm-based Parameter Estimation of Fractional-order Chaotic System with Time Delay 被引量:10
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作者 Wenjuan Gu Yongguang Yu Wei Hu 《IEEE/CAA Journal of Automatica Sinica》 SCIE EI CSCD 2017年第1期107-113,共7页
It is an important issue to estimate parameters of fractional-order chaotic systems in nonlinear science, which has received increasing interest in recent years. In this paper, time delay and fractional order as well ... It is an important issue to estimate parameters of fractional-order chaotic systems in nonlinear science, which has received increasing interest in recent years. In this paper, time delay and fractional order as well as system's parameters are concerned by treating the time delay and fractional order as additional parameters. The parameter estimation is converted into a multi-dimensional optimization problem. A new scheme based on artificial bee colony ABC algorithm is proposed to solve the optimization problem. Numerical experiments are performed on two typical time-delay fractional-order chaotic systems to verify the effectiveness of the proposed method. © 2014 Chinese Association of Automation. 展开更多
关键词 Chaos theory chaotic systems Numerical methods OPTIMIZATION Time delay Timing circuits
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The measuring of spectral emissivity of object using chaotic optimal algorithm
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作者 杨春玲 王宇野 +1 位作者 赵东阳 赵国良 《Chinese Physics B》 SCIE EI CAS CSCD 2005年第10期2041-2045,共5页
There exist a considerable variety of factors affecting the spectral emissivity of an object. The authors have designed an improved combined neural network emissivity model, which can identify the continuous spectral ... There exist a considerable variety of factors affecting the spectral emissivity of an object. The authors have designed an improved combined neural network emissivity model, which can identify the continuous spectral emissivity and true temperature of any object only based on the measured brightness temperature data. In order to improve the accuracy of approximate calculations, the local minimum problem in the algorithm must be solved. Therefore, the authors design an optimal algorithm, i.e. a hybrid chaotic optimal algorithm, in which the chaos is used to roughly seek for the parameters involved in the model, and then a second seek for them is performed using the steepest descent. The modelling of emissivity settles the problems in assumptive models in multi-spectral theory. 展开更多
关键词 spectral emissivity radiation thermometric chaotic optimal algorithm
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Chaotic Genetic Algorithm-Based Forest Harvest Adjustment
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作者 李金铭 王梅芳 《Journal of Donghua University(English Edition)》 EI CAS 2010年第2期148-151,共4页
Forest harvesting adjustment is a decision-making,large and complex system. In this paper,we analysis the shortcomings of the traditional harvest adjustment problems,and establish the model of multi-target harvest adj... Forest harvesting adjustment is a decision-making,large and complex system. In this paper,we analysis the shortcomings of the traditional harvest adjustment problems,and establish the model of multi-target harvest adjustment. As intelligent optimization,chaotic genetic algorithm has the parallel mechanism and the inherent global optimization characteristics which are suitable for multi-objective planning the settlement of the issue,specially in complex occasions where there are many objective functions and optimize variables. In order to solve the problem of forest harvesting adjustment,this paper introduces a genetic algorithm to the Forest Farm of Qiujia Liancheng Longyan for forest harvesting adjustment firstly. And the experimental result shows that the method is feasible and effective,and it can provide satisfactory solution for policy makers. 展开更多
关键词 forest harvest adjustment multi-objective planning chaotic genetic algorithm optimal model
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Fuzzy Control of Chaotic System with Genetic Algorithm
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作者 方建安 郭钊侠 邵世煌 《Journal of Donghua University(English Edition)》 EI CAS 2002年第3期58-62,共5页
A novel approach to control the unpredictable behavior of chaotic systems is presented. The control algorithm is based on fuzzy logic control technique combined with genetic algorithm. The use of fuzzy logic allows fo... A novel approach to control the unpredictable behavior of chaotic systems is presented. The control algorithm is based on fuzzy logic control technique combined with genetic algorithm. The use of fuzzy logic allows for the implementation of human "rule-of-thumb" approach to decision making by employing linguistic variables. An improved Genetic Algorithm (GA) is used to learn to optimally select the fuzzy membership functions of the linguistic labels in the condition portion of each rule, and to automatically generate fuzzy control actions under each condition. Simulation results show that such an approach for the control of chaotic systems is both effective and robust. 展开更多
关键词 FUZZY control chaotic system GENETIC algorithm reinforcement learning.
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Particle Swarm Optimization Algorithm Based on Chaotic Sequences and Dynamic Self-Adaptive Strategy
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作者 Mengshan Li Liang Liu +4 位作者 Genqin Sun Keming Su Huaijin Zhang Bingsheng Chen Yan Wu 《Journal of Computer and Communications》 2017年第12期13-23,共11页
To deal with the problems of premature convergence and tending to jump into the local optimum in the traditional particle swarm optimization, a novel improved particle swarm optimization algorithm was proposed. The se... To deal with the problems of premature convergence and tending to jump into the local optimum in the traditional particle swarm optimization, a novel improved particle swarm optimization algorithm was proposed. The self-adaptive inertia weight factor was used to accelerate the converging speed, and chaotic sequences were used to tune the acceleration coefficients for the balance between exploration and exploitation. The performance of the proposed algorithm was tested on four classical multi-objective optimization functions by comparing with the non-dominated sorting genetic algorithm and multi-objective particle swarm optimization algorithm. The results verified the effectiveness of the algorithm, which improved the premature convergence problem with faster convergence rate and strong ability to jump out of local optimum. 展开更多
关键词 Particle SWARM algorithm chaotic SEQUENCES SELF-ADAPTIVE STRATEGY MULTI-OBJECTIVE Optimization
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A novel chaotic optimization algorithm and its applications
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作者 费春国 韩正之 《Journal of Harbin Institute of Technology(New Series)》 EI CAS 2010年第2期254-258,共5页
This paper presents a chaos-genetic algorithm (CGA) that combines chaos and genetic algorithms. It can be used to avoid trapping in local optima profiting from chaos'randomness,ergodicity and regularity. Its prope... This paper presents a chaos-genetic algorithm (CGA) that combines chaos and genetic algorithms. It can be used to avoid trapping in local optima profiting from chaos'randomness,ergodicity and regularity. Its property of global asymptotical convergence has been proved with Markov chains in this paper. CGA was applied to the optimization of complex benchmark functions and artificial neural network's (ANN) training. In solving the complex benchmark functions,CGA needs less iterative number than GA and other chaotic optimization algorithms and always finds the optima of these functions. In training ANN,CGA uses less iterative number and shows strong generalization. It is proved that CGA is an efficient and convenient chaotic optimization algorithm. 展开更多
关键词 chaotic optimization chaos-genetic algorithms (CGA) genetic algorithms neural network.
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Enhancement of Video Encryption Algorithm Performance Using Finite Field Z2^3-Based Chaotic Cipher
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作者 M. T. Suryadi B. Budiardjo K. Ramli 《通讯和计算机(中英文版)》 2012年第8期960-964,共5页
关键词 混沌密码 有限域 加密算法 性能 视频 已知明文攻击 加密过程 密码学
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Web mining based on chaotic social evolutionary programming algorithm
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作者 Xie Bin 《Journal of Systems Engineering and Electronics》 SCIE EI CSCD 2008年第6期1272-1276,共5页
With an aim to the fact that the K-means clustering algorithm usually ends in local optimization and is hard to harvest global optimization, a new web clustering method is presented based on the chaotic social evoluti... With an aim to the fact that the K-means clustering algorithm usually ends in local optimization and is hard to harvest global optimization, a new web clustering method is presented based on the chaotic social evolutionary programming (CSEP) algorithm. This method brings up the manner of that a cognitive agent inherits a paradigm in clustering to enable the cognitive agent to acquire a chaotic mutation operator in the betrayal. As proven in the experiment, this method can not only effectively increase web clustering efficiency, but it can also practically improve the precision of web clustering. 展开更多
关键词 web clustering chaotic social evolutionary programming K-means algorithm
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基于改进白鲸优化算法的无人机航迹规划
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作者 郑巍 徐晨昕 +2 位作者 熊小平 潘浩 樊鑫 《电光与控制》 北大核心 2026年第2期27-34,共8页
在航迹规划中,选择合适的算法对提高路径优化的效率和精确度至关重要。针对传统白鲸优化算法易陷入局部最优解的问题,提出了一种改进白鲸优化(EBWO)算法。首先,利用混沌反向学习策略来优化初始解的生成过程,以提高算法的初期收敛性和稳... 在航迹规划中,选择合适的算法对提高路径优化的效率和精确度至关重要。针对传统白鲸优化算法易陷入局部最优解的问题,提出了一种改进白鲸优化(EBWO)算法。首先,利用混沌反向学习策略来优化初始解的生成过程,以提高算法的初期收敛性和稳定性;其次,引入螺旋搜索策略增强全局搜索能力,使得算法在复杂环境中能够更有效地探索更广泛的解空间;最后,融入差分进化算法的变异种群个体,增强算法跳离局部最优解的能力。仿真实验结果表明,EBWO算法在航迹规划任务中相比其他算法生成了更高效的航迹方案,且其生成的航迹更加平稳。 展开更多
关键词 航迹规划 白鲸优化算法 混沌反向学习 螺旋搜索 差分进化算法
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工业园区循环流化床锅炉低热值煤掺烧优化
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作者 邓拓宇 董智鑫 《热力发电》 北大核心 2026年第3期19-27,共9页
在“双碳”目标的推动下,工业园区综合能源系统的建立,以及大规模可再生能源并网对火电机组配煤灵活性要求更高。工业园区循环流化床锅炉的配煤过程分为炉外与炉内两个阶段。在炉外配煤阶段,针对低热值煤掺烧,建立了最小煤质偏差模型,... 在“双碳”目标的推动下,工业园区综合能源系统的建立,以及大规模可再生能源并网对火电机组配煤灵活性要求更高。工业园区循环流化床锅炉的配煤过程分为炉外与炉内两个阶段。在炉外配煤阶段,针对低热值煤掺烧,建立了最小煤质偏差模型,采用基于混沌搜索的自适应变异粒子群算法将低热值煤掺配为符合锅炉煤质要求的入炉煤。在炉内配煤阶段,为保证负荷稳定的同时降低燃料成本,需动态调整不同负荷下入炉煤的掺烧比例。针对循环流化床锅炉炉内配煤问题,建立两阶段配煤优化模型:第一阶段根据化工厂周最大日负荷需求及典型光伏场景下机组出力需求,选择给煤机组合方式;第二阶段根据负荷需求以及给煤机优化结果建立负荷平衡约束,考虑炉内脱硫过程建立混煤含硫量约束,进行给煤量优化。对比春季典型辐照条件下不同配煤策略下的锅炉燃料成本,结果显示火电机组通过双煤种炉内掺烧可以使日燃烧成本降低43.6万元;对比煤仓改造前后掺烧三煤种燃料成本,结果显示改造后机组日燃料成本进一步降低。 展开更多
关键词 工业园区 低热值煤 粒子群优化算法 混沌搜索 煤仓改造
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一种基于改进小龙虾优化算法的无人机路径规划
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作者 梁海军 龚克 +1 位作者 胡文海 代杰 《飞行力学》 北大核心 2026年第2期23-29,73,共8页
为提高无人机在路径规划中的快速性及最优性,针对传统的小龙虾优化算法(COA)收敛速度慢、易陷入局部最优、稳定性较差等问题,提出了一种改进的小龙虾优化算法(ICOA)。首先,利用Tent混沌映射初始化种群提高种群多样性;然后,引入个体位置... 为提高无人机在路径规划中的快速性及最优性,针对传统的小龙虾优化算法(COA)收敛速度慢、易陷入局部最优、稳定性较差等问题,提出了一种改进的小龙虾优化算法(ICOA)。首先,利用Tent混沌映射初始化种群提高种群多样性;然后,引入个体位置更新策略来加快算法的收敛速度,提升找到全局最优的能力;最后,使用三次样条插值对路径进行平滑化处理。仿真结果表明,与传统COA、淘金优化算法、开普勒优化算法相比,ICOA在三维环境中具有更高的收敛速度和精度,以及更优的路径。 展开更多
关键词 路径规划 小龙虾优化算法 无人机 混沌映射 三次样条插值
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面向电主轴的TFOA-BP电阻辨识方法
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作者 李鹏 李鸿业 张丽秀 《制造技术与机床》 北大核心 2026年第4期235-243,共9页
高速电主轴作为高速切削机床的核心部件,其控制精度直接受到定子电阻变化的影响,然而高速电主轴在实际运行中,会出现因温升等因素导致定子电阻发生漂移,进而引发控制性能下降的关键问题,以及传统辨识方法对初始值敏感、易陷入局部最优... 高速电主轴作为高速切削机床的核心部件,其控制精度直接受到定子电阻变化的影响,然而高速电主轴在实际运行中,会出现因温升等因素导致定子电阻发生漂移,进而引发控制性能下降的关键问题,以及传统辨识方法对初始值敏感、易陷入局部最优的缺陷。针对以上问题,提出了一种基于改进果蝇优化算法(tent-chaos improved fruit fly optimization algorithm, TFOA)与反向传播(back propagation, BP)神经网络相结合的定子电阻辨识方法(TFOA-back propagation, TFOA-BP),旨在提高辨识精度与鲁棒性。仿真实验结果表明,所提TFOA-BP方法的定子电阻辨识误差稳定在±0.004 6Ω,较传统BP神经网络误差降低68.2%;与多种主流方法对比,均方误差(mean squared error, MSE)平均减少了42.7%。所提方法在辨识精度、收敛速度及稳定性方面均具明显优势,对电机参数智能辨识具有理论参考与工程应用价值。 展开更多
关键词 果蝇优化算法 Tent混沌映射 精英保留机制 BP神经网络 电主轴
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基于多策略融合哈里斯鹰算法的多无人机协同路径规划方法
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作者 鲍刚 袁豪 +2 位作者 周冉冉 陶长河 杨代强 《兵器装备工程学报》 北大核心 2026年第2期267-278,共12页
针对多无人机协同路径规划以及传统哈里斯鹰优化算法存在稳定性差、容易陷入局部最优的不足等问题,提出一种基于多策略融合哈里斯鹰优化算法(MIHHO)的多无人机协同路径规划方法。综合考虑多无人机飞行成本以及其性能约束和多机协同约束... 针对多无人机协同路径规划以及传统哈里斯鹰优化算法存在稳定性差、容易陷入局部最优的不足等问题,提出一种基于多策略融合哈里斯鹰优化算法(MIHHO)的多无人机协同路径规划方法。综合考虑多无人机飞行成本以及其性能约束和多机协同约束,建立多无人机协同路径规划模型。在哈里斯鹰优化算法的基础上,使用复合混沌佳点集策略增加种群的多样性并扩大搜索范围。在探索阶段引入改进的黏菌位置更新策略降低算法随机性,增强算法的搜索能力。采用自适应混合变异策略加强算法摆脱局部最优解的能力。仿真实验表明:所提MIHHO算法具有更好的稳定性和收敛精度,在多无人机协同路径规划问题中能够为每架无人机规划出满足约束且路径长度更短、成本更低的飞行路径。 展开更多
关键词 多无人机 路径规划 哈里斯鹰优化算法 复合混沌佳点集 黏菌位置更新 自适应混合变异
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基于多策略改进长鼻浣熊算法优化的粒子滤波算法
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作者 朱新宇 孙雅茹 +1 位作者 詹宇成 李哲宇 《智能计算机与应用》 2026年第2期55-63,共9页
针对传统粒子滤波算法在同步定位与建图任务中存在的粒子退化、多样性缺失及收敛精度不足等问题,本文提出一种基于改进长鼻浣熊优化的粒子滤波算法。在传统的长鼻浣熊算法的基础上,采用Circle混沌映射替代传统随机初始化方式,有效打破... 针对传统粒子滤波算法在同步定位与建图任务中存在的粒子退化、多样性缺失及收敛精度不足等问题,本文提出一种基于改进长鼻浣熊优化的粒子滤波算法。在传统的长鼻浣熊算法的基础上,采用Circle混沌映射替代传统随机初始化方式,有效打破初始局部聚集现象,显著提升种群在状态空间探索的均匀性;通过在位置更新阶段中设置自适应权重根据迭代进程动态调整探索半径,平衡全局与局部探索能力;最后引入精英引导-柯西扰动协同机制,利用精英粒子信息指引搜索方向并结合柯西扰动的长跳跃特性,有效引导粒子群跳出局部最优区域并增强多样性,缓解粒子退化和样本贫化。实验结果表明,改进的算法在提升粒子多样性的同时、又提高了系统状态估计精度,相对于传统粒子滤波算法,具有更好的鲁棒性,应用于SLAM算法中,能够降低因粒子多样性缺失导致的定位误差累积,避免位姿估计发散;同时,通过稳定的位姿估计反馈,提升地图构建的全局一致性,显著增强SLAM算法的鲁棒性与可靠性。 展开更多
关键词 粒子滤波 长鼻浣熊优化算法 混沌映射初始化 自适应惯性权重 精英引导 柯西扰动 SLAM
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Chaotic Monkey算法在局放源超声阵列定位中的应用 被引量:2
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作者 徐玉琴 张宏玮 +3 位作者 李通 杨雨龙 陶珺函 谢庆 《绝缘材料》 CAS 北大核心 2014年第5期92-95,101,共5页
由于传统的局部放电超声阵列定位方法依靠两条测向线的"测向交叉"原理进行局放源的定位,未考虑实际应用时的测向误差影响,会降低定位精度,而利用多平台测向与传统遗传算法相结合的方法进行局放源位置的搜索时,会由于遗传算法... 由于传统的局部放电超声阵列定位方法依靠两条测向线的"测向交叉"原理进行局放源的定位,未考虑实际应用时的测向误差影响,会降低定位精度,而利用多平台测向与传统遗传算法相结合的方法进行局放源位置的搜索时,会由于遗传算法易陷入局部最优而导致实用性不强。因此提出一种基于Chaotic Monkey算法的局部放电超声阵列定位方法,简要介绍了其定位原理,通过仿真分析了该方法的定位结果,并与传统遗传算法的搜索结果进行比较,验证了该方法的有效性。 展开更多
关键词 局部放电 超声阵列定位 多平台测向 chaotic Monkey算法
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多策略融合的改进塘鹅优化算法
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作者 赵煜恒 梁晓磊 +1 位作者 张东美 张煜 《计算机工程与设计》 北大核心 2026年第1期55-63,共9页
针对塘鹅优化算法参数繁多、局部寻优能力不足等问题,提出一种多策略融合的改进塘鹅优化算法。利用Tent混沌映射初始化种群,丰富种群多样性;引入Piecewise混沌映射平衡个体位置更新策略的选择,提升全局搜索能力和寻优效率;构建精英种群... 针对塘鹅优化算法参数繁多、局部寻优能力不足等问题,提出一种多策略融合的改进塘鹅优化算法。利用Tent混沌映射初始化种群,丰富种群多样性;引入Piecewise混沌映射平衡个体位置更新策略的选择,提升全局搜索能力和寻优效率;构建精英种群引导的个体位置更新策略,避免因个体学习源单一而导致的算法早熟;建立自适应机制平衡种群的探索与开发比例,并设计自适应莱维飞行步长因子帮助算法跳出局部最优。通过CEC2013测试集的28个基准函数和轮系设计问题实验,结果验证改进后的算法较对比的6种同类算法具有更好的寻优精度和收敛速度。 展开更多
关键词 塘鹅优化算法 混沌映射 精英种群引导 自适应 CEC2013 收敛曲线 轮系设计问题
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基于混沌变异粒子群算法的工业机器人轨迹规划
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作者 杨骏泽 孙丹枫 赵建勇 《现代制造工程》 北大核心 2026年第3期20-28,共9页
针对在工业制造领域中机器人的运动多约束问题,提出一种基于混沌变异粒子群算法的机器人多约束下运动参数最优的轨迹规划方法。在粒子群算法基础上,采用Logistic混沌映射策略与动态反向学习策略相结合的初始化方法,引入K-邻域模型的精... 针对在工业制造领域中机器人的运动多约束问题,提出一种基于混沌变异粒子群算法的机器人多约束下运动参数最优的轨迹规划方法。在粒子群算法基础上,采用Logistic混沌映射策略与动态反向学习策略相结合的初始化方法,引入K-邻域模型的精英构造策略和改进的轮盘赌策略,兼顾局部与全局的空间搜索,并引入动态变异邻域搜索策略,以增加种群多样性,提高跳出局部最优解的可能性。通过基准函数寻优测试,并与其他算法性能对比,结果证明该算法具备高质量求解优势。在工业机器人基于五次多项式插值法的轨迹规划应用中,相较于粒子群以及现有改进算法,在满足工作时间约束和运动速度约束条件下,该算法能够有效降低机器人各关节加速度变化幅度,大幅提高机器人运动稳定性。 展开更多
关键词 工业机器人 多约束 混沌变异粒子群算法 轨迹规划
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