نتایج جستجو برای: الگوریتم qpso

تعداد نتایج: 22549  

2008
Millie Pant Radha Thangaraj Ajith Abraham

This paper presents a new variant of Particle Swarm Optimization algorithm named QPSO for solving global optimization problems. QPSO is an integrated algorithm making use of a newly defined, multiparent, quadratic crossover operator in the Basic Particle Swarm Optimization (BPSO) algorithm. The comparisons of numerical results show that QPSO outperforms BPSO algorithm in all the twelve cases ta...

2014
ZHANG LE ZHANG XINMAN XU XUEBIN WANG DONG LIU JIE LIU YANG

In order to improve and accelerate the speed of image integration, an optimal and intelligent method for multi-focus image fusion is presented in this paper. Based on particle swarm optimization and quantum theory, quantum particle swarm optimization (QPSO) intelligent search strategy is introduced in salience analysis of a contrast visual masking system, combined with the segmentation techniqu...

Journal: :Applied Mathematics and Computation 2008
Maolong Xi Jun Sun Wenbo Xu

Keywords: PSO QPSO Mean best position Weight parameter WQPSO a b s t r a c t Quantum-behaved particle swarm optimization (QPSO) algorithm is a global convergence guaranteed algorithms, which outperforms original PSO in search ability but has fewer parameters to control. In this paper, we propose an improved quantum-behaved particle swarm optimization with weighted mean best position according t...

2008
Leandro dos Santos Coelho Ji-Huan He Leandro dos Santos

Particle swarm optimization (PSO) is a population-based swarm intelligence algorithm that shares many similarities with evolutionary computation techniques. However, the PSO is driven by the simulation of a social psychological metaphor motivated by collective behaviors of bird and other social organisms instead of the survival of the fittest individual. Inspired by the classical PSO method and...

2009
Salima OUADFEL Mohamed BATOUCHE

This paper presents a novel image segmentation algorithm, which uses a biologically inspired paradigm known as swarm intelligence to segment images. A more efficient MRF based clustering algorithm that incorporated the Markov Random Field (MRF) theory and the Quantum Particle Swarm Optimization (QPSO) algorithm is proposed. the QPSO algorithm is ised to optimize the energy function which is a c...

2012
Qun Niu Zhuo Zhou Hong-Yun Zhang Jing Deng

Quantum-behaved particle swarm optimization (QPSO) is an efficient and powerful population-based optimization technique, which is inspired by the conventional particle swarm optimization (PSO) and quantum mechanics theories. In this paper, an improved QPSO named SQPSO is proposed, which combines QPSO with a selective probability operator to solve the economic dispatch (ED) problems with valve-p...

امروزه با توجه به اهمیت بالای مدیریت پایدار آب­های زیرزمینی، برای بررسی و ارزیابی منابع آب از مدل‌سازی و پیش‌بینی تراز آب­‌های زیرزمینی (GWL) استفاده می‌­شود. هدف از این پژوهش، ارزیابی عملکرد دو مدل ماشین یادگیری بیشینه (ELM) و شبکه عصبی مصنوعی (ANN) و همچنین، تلفیق آن دو مدل با الگوریتم تبدیل موجک (W-ELM و W-) است که در نهایت برای بالا بردن قدرت پیش­‌بینی و بهینه‌­کردن وزن­‌های ورودی (وزن­‌های...

Journal: :IEEE Access 2023

This paper aims to present a robust algorithm developed that minimize the number of sensor nodes in WSN using three quantum-behaved swarm optimization techniques based on Lorentz (QPSO-LR), Rosen–Morse (QPSO-RM), and Coulomb-like Square Root (QPSO-CS) potential fields. The allocate minimum wireless sensors forested areas without losing connectivity an environment with high penetration vegetatio...

Journal: :Applied Mathematics and Computation 2011
Jun Sun Wei Fang Vasile Palade Xiaojun Wu Wenbo Xu

This paper proposes a novel variant of quantum-behaved particle swarm optimization (QPSO) algorithm with the local attractor point subject to a Gaussian probability distribution (GAQPSO). The local attractor point in QPSO plays an important in that determining the convergence behavior of an individual particle. As such, the mean value and standard deviation of the proposed Gaussian probability ...

Journal: :Int. Arab J. Inf. Technol. 2013
Saeed Farzi Alireza Rayati Shavazi Abbas Pandari

One of the popular methods for optimizing combinational problems such as portfolio selection problem is swarmbased methods. In this paper, we have proposed an approach based on Quantum-Behaved Particle Swarm Optimization (QPSO) for the portfolio selection problem. The particle swarm optimization (PSO) is a well-known population-based swarm intelligence algorithm. QPSO is also proposed by combin...

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