نتایج جستجو برای: comprehensive learning particle swarm optimization

تعداد نتایج: 1232781  

Journal: :journal of chemical and petroleum engineering 2014
abdolnabi hashemi afshin ghanbarzadeh siamak hosseini

the dogleg severity is one of the most important parameters in directional drilling. improvement of these indicators actually means choosing the best conditions for the directional drilling in order to reach the target point. selection of high levels of the dogleg severity actually means minimizing well trajectory, but on the other hand, increases fatigue in drill string, increases torque and d...

Journal: :Inf. Sci. 2012
Md. Nasir Swagatam Das Dipankar Maity Soumyadip Sengupta Udit Halder Ponnuthurai N. Suganthan

The concept of particle swarms originated from the simulation of the social behavior commonly observed in animal kingdom and evolved into a very simple but efficient technique for optimization in recent past. Since its advent in 1995, the Particle Swarm Optimization (PSO) algorithm has attracted the attention of a lot of researchers all over the world resulting into a huge number of variants of...

2015
Zhen-Lun Yang Angus K. M. Wu Hua-Qing Min

An improved quantum-behaved particle swarm optimization with elitist breeding (EB-QPSO) for unconstrained optimization is presented and empirically studied in this paper. In EB-QPSO, the novel elitist breeding strategy acts on the elitists of the swarm to escape from the likely local optima and guide the swarm to perform more efficient search. During the iterative optimization process of EB-QPS...

2013
Hongyu Duan Fengxia Yang

Particle swarm optimization algorithm in solving complex functions, such as slow convergence, accuracy is not high, easily falling into local optimum problem. Based on the chaos optimization is introduced into particle swarm optimization algorithm, given the chaotic particle swarm optimization algorithm. In order to improve the image quality of CMOS image sensor, the image of the main noise sou...

Journal: :Int. J. Computational Intelligence Systems 2010
Lei Gao Atakelty Hailu

This paper presents an improved particle swarm optimizer (PSO) for solving multimodal optimization problems with problem-specific constraints and mixed variables. The standard PSO is extended by employing a comprehensive learning strategy, different particle updating approaches, and a feasibility-based rule method. The experiment results show the algorithm located the global optima in all teste...

2012
Yanhua Zhong

Currently, the researchers have made a lot of hybrid particle swarm algorithm in order to solve the shortcomings that the Particle Swarm Algorithms is easy to converge to local extremum, these algorithms declare that there has been better than the standard particle swarm. This study selects three kinds of representative hybrid particle swarm optimizations (differential evolution particle swarm ...

2014
Ming-Fang WANG Jie WANG Xue-Jun ZHAO

The basic thought of particle swarm optimization is introduced firstly, then particle swarm optimization algorithm model is established. The application of the improved particle swarm optimization algorithm to power supply system fault diagnosis is analyzed in accordance with problem of the algorithm, and migration strategy is added to particle swarm optimization algorithm. Finally the paramete...

پایان نامه :وزارت علوم، تحقیقات و فناوری - دانشگاه علم و صنعت ایران - دانشکده مهندسی عمران 1385

امروزه انرژی نقش بسیار مهمی در زندگی بشر دارد با افزایش جمعیت و کمبود منابع انرژی استفاده و بهره وری بهینه از منابع انرژی از اهمیت خاصی برخوردار شده است. از جمله این منابع انرژی انرژی الکتریسته است که در ایستگاههای پمپاژ نقشی اساسی ایفا می کند. در سیستمهای پمپاژ مهمترین عامل نحوه عملکرد پمپها می باشد از انجا که راندمان پمپ با دبی ان تغییر می کند بنابراین میزان انرژی مصرفی در واحد حجم اب پمپاژ ش...

Journal: :international journal of advanced design and manufacturing technology 0
zohreh alizadeh elizee abbas babazadeh sayed mohamad sayed hoseini zahra alizadeh elize

this paper defines how a meta heuristic search engine called p.s.o can be used to maximize the objective function of a logistic regression model, describing the relationship between the response variable (product designs' score) and a set of explanatory variables (product design factors). at the first phase the processed data, classified and categorized, by kansie engineering is used as input t...

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