• Title/Summary/Keyword: Two-step optimization

검색결과 246건 처리시간 0.03초

자동차 현가장치 부품에 대한 신뢰성 기반 최적설계에 관한 연구 (A Study for the Reliability Based Design Optimization of the Automobile Suspension Part)

  • 이종홍;유정훈;임홍재
    • 한국자동차공학회논문집
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    • 제12권2호
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    • pp.123-130
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    • 2004
  • The automobile suspension system is composed of parts that affect performances of a vehicle such as ride quality, handling characteristics, straight performance and steering effort, etc. Moreover, by using the finite element analysis the cost for the initial design step can be decreased. In the design of a suspension system, usually system vibration and structural rigidity must be considered simultaneously to satisfy dynamic and static requirements simultaneously. In this paper, we consider the weight reduction and the increase of the first eigen-frequency of a suspension part, the upper control arm, especially using topology optimization and size optimization. Firstly, we obtain the initial design to maximize the first eigen-frequency using topology optimization. Then, we apply the multi-objective parameter optimization method to satisfy both the weight reduction and the increase of the first eigen-frequency. The design variables are varying during the optimization process for the multi-objective. Therefore, we can obtain the deterministic values of the design variables not only to satisfy the terms of variation limits but also to optimize the two design objectives at the same time. Finally, we have executed reliability based optimal design on the upper control arm using the Monte-Carlo method with importance sampling method for the optimal design result with 98% reliability.

반응면 기법을 이용한 램 가속기 최적설계에 관한 연구 (Ram Accelerator Optimization Using the Response Surface Method)

  • 전권수;전용희;이재우;변영환
    • 한국전산유체공학회지
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    • 제5권2호
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    • pp.55-63
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    • 2000
  • In this paper, the numerical study has been done for the improvement of the superdetonative ram accelerator performance and for the design optimization of the system. The objective function to optimize the premixture composition is the ram tube length, required to accelerate projectile from initial velocity V/sub 0/ to target velocity V/sub e/. The premixture is composed of H₂, O₂, N₂ and the mole numbers of these species are selected as design variables. RSM(Response Surface Methodology) which is widely used for the complex optimization problems is selected as the optimization technique. In particular, to improve the non-linearity of the response and to consider the accuracy and the efficiency of the solution, design space stretching technique has been applied. Separate sub-optimization routine is introduced to determine the stretching position and clustering parameters which construct the optimum regression model. Two step optimization technique has been applied to obtain the optimal system. With the application of stretching technique, we can perform system optimization with a small number of experimental points, and construct precise regression model for highly non-linear domain. The error compared with analysis result is only 0.01% and it is demonstrated that present method can be applied to more practical design optimization problems with many design variables.

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표면거리 및 표면곡률 최적화 기반 다중모달리티 뇌영상 정합 (Multimodal Brain Image Registration based on Surface Distance and Surface Curvature Optimization)

  • 박지영;최유주;김민정;태우석;홍승봉;김명희
    • 정보처리학회논문지A
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    • 제11A권5호
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    • pp.391-400
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    • 2004
  • 서로 다른 종류의 영상을 정확하게 연관시켜 복합적인 정보를 제공하는 다중모달리티 의료 영상정합기법 중 표면정보 기반 영상정합에서는 일반적으로 동일 대상에 대한 서로 다른 모달리티에서 추출된 표면 윤곽정보 사이의 거리를 최소화함으로써 매칭이 이루어진다. 그런데 동일대상에 대해 취득되는 서로 다른 두 모달리티는 관심 영역 상의 표면 특성이 서로 유사하다. 그러므로 다중모달리티 영상정합에서 표면거리와 함께 표면의 형태 특성을 고려하여 두 영상을 매칭하는 방법이 정합결과의 정확도를 향상시킬 수 있다. 본 연구에서는 동일 대상의 서로 다른 두 모달리티 뇌영상 간의 표면거리와 표면곡률을 최적화하는 정합기법을 제안한다. 영상정합은 참조영상과 테스트영상에 대한 표면정보 생성과 이 두 개의 표면정보를 최적화하는 단계로 구성된다. 표면정보 생성 단계에서는 두 모달리티로부터 관심영역의 윤곽선을 추출하고, 이 중 참조 볼륨의 윤곽선에 대해서는 표면거리맵과 표면곡률맵을 구성하게 된다. 최적화 단계에서는 표면거리맵과 표면곡률맵을 참조하는 최적화 평가함수(cost function)에 의해 두 객체의 표면거리 차이와 표면곡률 차이를 최소화하는 정합 변환 값이 결정되고, 이것이 테스트영상의 변환에 적용되어 결과적으로 두 영상이 정합 되게 된다. 제안된 최적화 평가함수는 표면거리 정보만을 사용하는 평가함수에 비해 보다 견고한 정합 정확도를 보였으며 또한 본 연구는 정합결과의 볼륨 가시화를 통해 효율적인 영상 분석 수단을 제공하고자 하였다.

Corresponding between Error Probabilities and Bayesian Wrong Decision Lasses in Flexible Two-stage Plans

  • Ko, Seoung-gon
    • Journal of the Korean Statistical Society
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    • 제29권4호
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    • pp.435-441
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    • 2000
  • Ko(1998, 1999) proposed certain flexible two-stage plans that could be served as one-step interim analysis in on-going clinical trials. The proposed Plans are optimal simultaneously in both a Bayes and a Neyman-Pearson sense. The Neyman-Pearson interpretation is that average expected sample size is being minimized, subject just to the two overall error rates $\alpha$ and $\beta$, respectively of first and second kind. The Bayes interpretation is that Bayes risk, involving both sampling cost and wrong decision losses, is being minimized. An example of this correspondence are given by using a binomial setting.

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압입축 끝단의 손상저감을 위한 보스부 형상 최적설계 (Optimization of Boss Shape for Damage Reduction of the Press-fitted Shaft End)

  • 변성광
    • 한국기계가공학회지
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    • 제14권3호
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    • pp.85-91
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    • 2015
  • The press-fit shaft is an important part used in automobiles, vessels, and trains. This study proposes an optimized design method to reduce damage that may occur in the press-fitted shaft by modifying the shape of the boss step of the press-fitted shaft. To reduce the time and cost of running the optimized design method, an approximate design optimization is applied and an optimized algorithm is generated using a genetic algorithm that is widely used in engineering fields and an approximate model using a response surface method. The planned experiments for the data that are needed to generate the approximate model use a central composite design (CCD) and Latin hypercube sampling (LHS), and the results of the approximate optimization using the above two design of experiments are to be compared.

유클리디언 거리 기반의 단계적 소거 방법을 통한 화학센서 어레이 성능 최적화 (A Step-wise Elimination Method Based on Euclidean Distance for Performance Optimization Regarding to Chemical Sensor Array)

  • 임해진;최장식;전진영;변형기
    • 센서학회지
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    • 제24권4호
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    • pp.258-263
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    • 2015
  • In order to prevent drink-driving by detecting concentration of alcohol from driver's exhale breath, twenty chemical sensors fabricated. The one of purposes for sensor array which consists of those sensors is to discriminate between target gas(alcohol) and interference gases($CH_3CH_2OH$, CO, NOx, Toluene, and Xylene). Wilks's lambda was presented to achieve above purpose and optimal sensors were selected using the method. In this paper, step-wise sensor elimination based on Euclidean distance was investigated for selecting optimal sensors and compared with a result of Wilks's lambda method. The selectivity and sensitivity of sensor array were used for comparing performance of sensor array as a result of two methods. The data acquired from selected sensor were analyzed by pattern analysis methods, principal component analysis and Sammon's mapping to analyze cluster tendency in the low space (2D). The sensor array by stepwise sensor elimination method had a better sensitivity and selectivity compared to a result of Wilks's lambda method.

반응면 기법을 이용한 램 가속기 최적설계에 관한 연구 (Ram Accelerator Optimization Using the Response Surface Method)

  • 전용희;전권수;이재우;변영환
    • 한국전산유체공학회:학술대회논문집
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    • 한국전산유체공학회 2000년도 춘계 학술대회논문집
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    • pp.159-165
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    • 2000
  • In this paper, numerical study has been done for the improvement of the superdetonative ram accelerator performance and for the design optimization of the system. The objective function to optimize the premixture composition is the ram tube length required to accelerate projectile from initial velocity $V_o$ to target velocity $V_e$. The premixture is composed of $H_2,\;O_2,\;N_2$ and the mole numbers of these species are selected at design variables. RSM(Response Surface Methodology) which is widely used for the complex optimization problems is selected as the optimization technique. In particular, to improve the non-linearity of the response and to consider the accuracy and efficiency of the solution, design space stretching technique has been applied. Separate sub-optimization routine is introduced to determine the stretching position and clustering parameters which construct the optimum regression model. Two step optimization technique has been applied to obtain the optimal system. With the application of stretching technique, we can perform system optimization with a small number of experimental points, and construct precise regression model for highly non-linear domain. The error to compared with analysis result is only $0.01\%$ and it is demonstrated that present method can be applied more practical design optimization problems with many design variables.

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3D Non-Rigid Registration for Abdominal PET-CT and MR Images Using Mutual Information and Independent Component Analysis

  • Lee, Hakjae;Chun, Jaehee;Lee, Kisung;Kim, Kyeong Min
    • IEIE Transactions on Smart Processing and Computing
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    • 제4권5호
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    • pp.311-317
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    • 2015
  • The aim of this study is to develop a 3D registration algorithm for positron emission tomography/computed tomography (PET/CT) and magnetic resonance (MR) images acquired from independent PET/CT and MR imaging systems. Combined PET/CT images provide anatomic and functional information, and MR images have high resolution for soft tissue. With the registration technique, the strengths of each modality image can be combined to achieve higher performance in diagnosis and radiotherapy planning. The proposed method consists of two stages: normalized mutual information (NMI)-based global matching and independent component analysis (ICA)-based refinement. In global matching, the field of view of the CT and MR images are adjusted to the same size in the preprocessing step. Then, the target image is geometrically transformed, and the similarities between the two images are measured with NMI. The optimization step updates the transformation parameters to efficiently find the best matched parameter set. In the refinement stage, ICA planes from the windowed image slices are extracted and the similarity between the images is measured to determine the transformation parameters of the control points. B-spline. based freeform deformation is performed for the geometric transformation. The results show good agreement between PET/CT and MR images.

ATM 망에서 최적 가상 경로망 설계를 위한 유전자 알고리즘 응용에 관한 연구 (A Study on Applying Genetic Algorithm for Optimum Virtual Path Network Design in ATM Network)

  • 강주락;권기호
    • 대한전자공학회:학술대회논문집
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    • 대한전자공학회 2000년도 하계종합학술대회 논문집(3)
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    • pp.31-34
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    • 2000
  • Genetic Algorithm is well known as the efficient algorithm which can solve a difficult optimization problem. Recently, there has been increasing interest in applying genetic algorithm to problem related to network design. In this paper, we propose a two-step genetic algorithm for designing a optimum virtual path network(VPN) for a given physical network and traffic demand. The first step is a routing step in which a route is found between every node pair in the network. In the second step, paths are assigned as VPs so as to minimize the total number of VPs configured, the number of VPs carried by a link, and the VP hopcount. We study the performance of the propose algorithm through simulation. The result shows that the VPN generated by the proposed algorithm is good in minimizing the number of VPs configured, the load on a link, and the VP hopcount.

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함수복잡도를 이용한 큐브선택과 이단계 리드뮬러표현의 최소화 (Cube selection using function complexity and minimizatio of two-level reed-muller expressions)

  • Lee, Gueesang
    • 전자공학회논문지A
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    • 제32A권6호
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    • pp.104-110
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    • 1995
  • In this paper, an effective method for the minimization of two-level Reed-muller expressions by cube selection whcih considers functional complexity is presented. In contrast to the previous methods which use Xlinking operations to join two cubes for minimizatio, the cube selection method tries to select cubes one at a time until they cover the ON-set of the given function. This method works for most benchmark circuits, but for parity-type functions it shows power performance. To solve this problem, a cost function which computes the functional complexity instead of only the size of ON-set of the function is used. Therefore the optimization is performed considering how the trun minterms are grouped together so that they can be realized by only a small number of cubes. In other words, it considers how the function is changed and how the change affects the next optimization step. Experimental results shows better performance in many cases including parity-type functions compared to pervious results.

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