• Title/Summary/Keyword: simple GA

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First Record of Icelus toyamensis (Scorpaeniformes: Cottidae) from the East Sea, Korea

  • Song, Young Sun;Kim, Jin-Koo;Ryu, Jung-Hwa;Kim, Hyeon-Ju;Kweon, Seon-Man;Choi, Seung-Ho
    • Animal Systematics, Evolution and Diversity
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    • v.28 no.4
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    • pp.304-307
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    • 2012
  • A three specimen of Icelus toyamensis, belonging to Cottidae, Scorpaeniformes, was firstly collected from the East Sea, Korea during 2007-2009. We herein described the species as the first record from Korea on the basis of these specimens. Icelus toyamensis is characterized by the following morphological combinations: spinous scales absent on the base of dorsal fin; small ctenoid scales scattered on body sides; gill rakers are short, tubular, and relatively broad; the uppermost preopercular spine is sharp and simple; dorsal fin rays VIII-IX, 20-21; anal fin soft rays 18-19; pectoral fin rays 18, and vertebrae 40-41. New Korean name of I. toyamensis is proposed as "Min-jul-ga-si-hoet-dae."

Learning Control of a U-type Tuned Liquid Damper (U 자형 TLD 시스템의 학습제어 기법 개발)

  • Ryu, Yeong-Soon;Ga, Chun-Sik
    • Proceedings of the KSME Conference
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    • 2003.11a
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    • pp.1584-1589
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    • 2003
  • Simple and effectively developed learning control logic is used to control vibration of U type Tuned Liquid Damper system. The purpose of this paper is design optimal control system to deal with unknown errors from nonlinearity and variation that cost modeling difficulty in complex structure and is followed with the desired behavior. Finally this hybrid control method applied to U type Tuned Liquid Damper structure gives the benefit from better performance of precision and stability of the structure by reducing vibration effect. This research leads to safety design in various structure to robust unspecified foreign disturbances such as earthquake.

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GA-Based ORPD considering Transmission Losses Re-Distribution (송전손실 재분배를 고려한 유전 알고리즘 기반의 무효전력 최적배분)

  • Chae, Myung-Suck;Lee, Myung-Hwan;Kim, Byung-Seop;Shin, Joong-Rin
    • Proceedings of the KIEE Conference
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    • 1999.11b
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    • pp.190-192
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    • 1999
  • This paper presents an algorithm for optimal reactive power dispatch problem based on genetic algorithm. Optimal reactive power dispatch is particularized to the minimization of transmission line losses by suitable selection of generator reactive power outputs and transformer tap settings. To attain for the objective, in this paper, loss re-distribution algorithm(LRDA) is applied to ORPD. The proposed method has been evaluated on the IEEE 30 bus system. Results of the application of the method are compared with a simple genetic algorithm.

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The Fuzzy Modeling by Virus-messy Genetic Algorithm (바이러스 메시 유전 알고리즘에 의한 퍼지 모델링)

  • 주영훈;최종일;박직배
    • Journal of the Korean Institute of Intelligent Systems
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    • v.11 no.2
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    • pp.95-100
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    • 2001
  • 비선형 시스템의 성공적인 퍼지 모델을 구성하기 위한 최적의 퍼지 추론 시스템의 동정은 중요하고도 어려운 문제이다. 전통적으로 유전 알고리즘은 어느 정도의 전역 최적해를 찾을 수 있기 때문에 퍼지 모델의 구조와 파라미터를 동정하는데 사용되어 왔다. 그러나, 유전 알고리즘은 개체군 진화 시 우수한 개체의 출현은 지역수렴의 원인이 된다. 따라서, 본 논문에서는 바이러스 메시 유전알고리즘을 이용한 효과적인 퍼지 모델링 방법을 제안한다. 제안된 방법은 지역 정보가 개체군 내에서 교환됨으로써 지역 수렴의 대인아 될 수 있을 뿐 아니라, 가변길이 스트링을 사용함으로써 좀더 효과적이고 적응적인 구조를 가질 수 있다. 또한 본 논문에서 제안한 방법의 우수성과 일반성을 증명하기 위해 복잡한 비선형 시스템과 가스로의 퍼지모델링에 적용하였다.

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On the Optimization of Raman Fiber Amplifier using Genetic Algorithm in the Scenario of a 64 nm 320 Channels Dense Wavelength Division Multiplexed System

  • Singh, Simranjit;Saini, Sonak;Kaur, Gurpreet;Kaler, Rajinder Singh
    • Journal of the Optical Society of Korea
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    • v.18 no.2
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    • pp.118-123
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    • 2014
  • For multi parameter optimization of Raman Fiber Amplifier (RFA), a simple genetic algorithm is presented in the scenario of a 320 channel Dense Wavelength Division Multiplexed (DWDM) system at channel spacing of 25 GHz. The large average gain (> 22 dB) is observed from optimized RFA with the optimized parameters, such as 39.6 km of Raman length with counter-propagating pumps tuned to 205.5 THz and 211.9 THz at pump powers of 234.3 mW, 677.1 mW respectively. The gain flattening filter (GFF) has also been optimized to further reduce the gain ripple across the frequency range from 190 to 197.975 THz for broadband amplification.

Optimal Classifier Ensemble Design for Vehicle Detection Using GAVaPS (자동차 검출을 위한 GAVaPS를 이용한 최적 분류기 앙상블 설계)

  • Lee, Hee-Sung;Lee, Jae-Hung;Kim, Eun-Tai
    • Journal of Institute of Control, Robotics and Systems
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    • v.16 no.1
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    • pp.96-100
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    • 2010
  • This paper proposes novel genetic design of optimal classifier ensemble for vehicle detection using Genetic Algorithm with Varying Population Size (GAVaPS). Recently, many classifiers are used in classifier ensemble to deal with tremendous amounts of data. However the problem has a exponential large search space due to the increasing the number of classifier pool. To solve this problem, we employ the GAVaPS which outperforms comparison with simple genetic algorithm (SGA). Experiments are performed to demonstrate the efficiency of the proposed method.

Schema Analysis on Co-Evolutionary Algorithm (공진화에 있어서 스키마 해석)

  • Byung, Jun-Hyo;Sim, Kwee-Bo
    • Proceedings of the Korean Institute of Intelligent Systems Conference
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    • 1998.03a
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    • pp.77-80
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    • 1998
  • The theoretical foundations of simple genetic algorithm(SGA) are the Schema Theorem and the Building Block Hypothesis. Although SGA does well in many applications as an optimization method, still it does not guarantee the convergence of a global optimum in GA-hard problems and deceptive problems. Therefore as an alternative scheme, there is a growing interest in a co-evolutionary system, where two populations constantly interact and cooperate each other. In this paper we show why the co-evolutionary algorithm works better than SGA in terms of an extended schema theorem. Also the experimental results show a co-evolutionary algorithm works well in optimization problems.

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Development and Application of Metropolis Genetic Algorithm for the Structural Design Optimization (구조물의 설계 최적화를 위한 메트로폴리스 유전알고리즘의 개발 및 적용)

  • 박균빈;류연선;김정태;조현만
    • Proceedings of the Computational Structural Engineering Institute Conference
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    • 2003.10a
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    • pp.115-122
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    • 2003
  • A Metropolis genetic algorithm(MGA) is developed and applied for the structural design optimization. In MGA favorable features of Metropolis algorithm in simulated annealing(SA) are incorporated in simple genetic algorithm(SGA), so that the MGA alleviates the disadvantage of finding imprecise solution in SGA and time-consuming computation in SA. Performances of MGA are compared with those of conventional algorithms such as Holland's SGA, Krishnakumar's micro genetic algorithm(μGA), and Kirkpatrick's SA. Typical numerical examples are used to evaluate the favorable features and applicability of MGA From the theoretical evaluation and numerical experience, it is concluded that the proposed MGA is a reliable and efficient tool for structural design optimization.

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The Study of Improvement in the Characteristics of Oxide Thin Film Transistor by using Atmospheric Pressure Plasma (대기압 플라즈마를 이용한 산화물 박막 트랜지스터 표면처리에 관한 연구)

  • Kim, Ga Young;Kim, Kyong Nam;Yeom, Geun Young
    • Journal of Surface Science and Engineering
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    • v.48 no.1
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    • pp.7-10
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    • 2015
  • Recently, oxide TFTs has attracted a lot of interests due to their outstanding properties such as excellent environmental stability, high mobility, wide-band gap energy and high transparency, and investigated through the method using vacuum system and wet solution. In the case of the method using wet solution, process is very simple, however, annealing process should be included. In this study, to overcome the problem of annealing process, atmospheric pressure plasma was used for annealing, and the electrical characteristics such as on/off ration and mobility of device were investigated.

Optimization of Fuzzy Set Fuzzy Model by Means of Particle Swarm Optimization (PSO를 이용한 퍼지집합 퍼지모델의 최적화)

  • Kim, Gil-Sung;Choi, Jeoung-Nae;Oh, Sung-Kwun
    • Proceedings of the KIEE Conference
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    • 2007.07a
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    • pp.329-330
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    • 2007
  • 본 논문에서는 particle swarm optimization(PSO)를 통한 비선형시스템의 퍼지집합 퍼지모델의 최적화 방법을 제안한다. 퍼지 모델링에서 전반부 동정, 즉 구조 동정 및 파라미터 동정은 비선형 시스템을 표현하는데 있어서 매우 중요하다. 퍼지모델의 전반부 동정에 있어 최적화 과정이 필요하며 유전자 알고리즘(Genetic Algorithm; GA)을 이용하여 퍼지모델을 최적화한 연구가 많이 있다. 본 연구는 파라미터 동정 시 최근 여러 가지 어려운 최적화 문제를 수행함에 있어서 성능의 우수성이 증명된 PSO를 이용하여 퍼지집합 퍼지모델의 전반부 파라미터를 동정하였다. 구조동정은 단순 유전자 알고리즘(Simple Genetic Algorithm; SGA)을 이용하여 동정하였으며 파라미터 동정시 실수 코딩유전자 알고리즘(Real Coded Genetic Algorithm; RCGA)와 PSO를 각각 파라미터 동정에 이용하여 성능을 비교하였다.

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