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1)  general particle swarm optimization
广义粒子群优化
1.
General Particle Swarm Optimization Algorithm and Its Application to the Job Shop Scheduling Problems;
广义粒子群优化算法及其在作业车间调度中的应用研究
2.
In order to solve this problem,this paper proposes a general particle swarm optimization algorithm to solve the one-dimension cutting stock problem.
针对现有粒子群优化算法在求解组合优化问题时粒子速度迭代难以定义的问题,首先将粒子群优化算法与遗传算法相结合,利用交叉算子、变异算子,提出一种广义粒子群优化算法来求解一维下料问题;然后引入模拟退火算法作为自适应策略,避免算法陷入局部最优。
2)  general particle swarm optimization model
广义粒子群优化模型
3)  GPSO
广义粒子群
1.
A new method of text dimension reduction is brought forward,based on pattern aggregation and adaptive general particle swarm optimization(AGPSO).
将模式聚合和自适应广义粒子群算法相结合,提出了一种文本属性约简新方法。
4)  particle swarm optimization(PSO)
粒子群优化
1.
With the introduction of punishment function and the appropriate modification of objective function,a sintering blending optimization algorithm is proposed,which takes full advantage of the global search ability of particle swarm optimization(PSO) algorithm and the local search ability of conjugate gradient algorithm with constraints.
在引入惩罚函数和对目标函数进行适当修改的前提下,充分利用粒子群优化算法的全局搜索能力和约束条件下共轭梯度法的局部搜索能力,设计了烧结配料优化算法。
2.
In order to solve the problems of low-precision and slow control of the traditional algorithms in the pattern recognition and control of flatness,the neural network trained by hybrid algorithms of particle swarm optimization(PSO) and back propagation(BP)is introduced.
为了解决传统的板形识别与控制中的识别精度低,控制速度慢等问题,将粒子群优化(particle swarm optimization,PSO)算法和误差反传递(back propagation,BP)算法混合训练的PSO-BP网络引入到板形的识别与控制中。
3.
HPSO introduces evolutionary algorithm into particle swarm optimization(PSO),thus can get higher precision and faster convergence spe.
由于电力负荷内在的非线性特性,传统基于梯度搜索的参数辨识技术可能陷入局部最优,影响了预测精度,故提出了混合进化和粒子群优化算法。
5)  particle swarm optimization
粒子群优化
1.
Multi-objective model of tolerance design and its solution with particle swarm optimization algorithm;
公差设计多目标模型及其粒子群优化算法研究
2.
Application of immune particle swarm optimization to job-shop scheduling problem;
免疫粒子群优化算法在车间作业调度中的应用
3.
Bayer material balance computation based on improved particle swarm optimization algorithm;
基于改进粒子群优化技术的拜耳法物料平衡计算
6)  PSO
粒子群优化
1.
Transmission Network Optimization Planning Based on Hybrid PSO;
基于混合粒子群优化的电网优化规划
2.
PSO-Based Optimization of Signal Timing and Simulation for Isolated Intersection;
基于粒子群优化的单交叉口信号控制与仿真
3.
An optimal phase-factor selection algorithm for PTS based on PSO in OFDM;
OFDM中基于粒子群优化的PTS相位因子优选算法
补充资料:颜料β粒子群
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性质:系指由多个原级粒子或二次粒子或它们两者通过比较弱的物理力,以粒子与粒子的棱或角相接触而形成的疏松的集合体,又称颜料三次粒子(pigment tertiary particle),也称颜料β粒子群(β-particle cluster of pigment)。由于粒子间的结合力弱,可通过颜料分散过程使其分离开,故它本身不能在颜料最终应用系统中作为一个实体而存在。是由颜料在制造和贮存过程中产生的。附聚体(agglomerate)与聚集体(aggregate),絮凝体(flocculate)不可混淆。

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