• 제목/요약/키워드: Multi-Parameters

검색결과 2,631건 처리시간 0.035초

다채널 음성분석장치를 이용한 정상 성인에서의 발성 방식에 따른 음성변수 분석 (Analysis of Voice Parameters on Different Phonatory Tasks using Multi-Channel Phonatory Function Analyzer in Healthy Adults)

  • 성명훈;이상준;김광현;노종렬;권택균;이강진;박광석;최종민
    • 대한후두음성언어의학회지
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    • 제13권2호
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    • pp.132-138
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    • 2002
  • Background and Objectives : The complex physiologic structure of the larynx can vibrate in three or more different ways that yield acuostically and perceptually distinct vocal quality. The purpose of this study is to examine the normal range of voice parameters in Multi-Channel Phonatory Function Analyzer and investigate the difference of voice parameters according to the phonatory patterns. Materials and Methods : Forty normal adult speakers (20 men and 20 women) with age ranging from third to forth decades pronounce low, comfortable, and high tone /a/ ; comfortable tone /${\ae}$/, /i/, /o/, and /u/ : fry, falsetto. Voice was analyzed by Newly developed multi-channel phonatory function analyzer. Results : The normal range of voice parameters in this system was similar to the existing data. Fry shows high jitter and falsetto low SQ. Fry and falsetto show low OQ in men but no difference in women. Jitter, OQ and SQ were different between men and women in modal register, whereas there was no gender difference in fry and falsetto. In frequency magnitude spectrum and EGG, modal register, fry and falsetto have distinguishing pattern. Conclusions : Modal register, fry and falsetto are distinguishable in voice parameters and show different vibratory patterns.

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An Optimized PI Controller Design for Three Phase PFC Converters Based on Multi-Objective Chaotic Particle Swarm Optimization

  • Guo, Xin;Ren, Hai-Peng;Liu, Ding
    • Journal of Power Electronics
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    • 제16권2호
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    • pp.610-620
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    • 2016
  • The compound active clamp zero voltage soft switching (CACZVS) three-phase power factor correction (PFC) converter has many advantages, such as high efficiency, high power factor, bi-directional energy flow, and soft switching of all the switches. Triple closed-loop PI controllers are used for the three-phase power factor correction converter. The control objectives of the converter include a fast transient response, high accuracy, and unity power factor. There are six parameters of the controllers that need to be tuned in order to obtain multi-objective optimization. However, six of the parameters are mutually dependent for the objectives. This is beyond the scope of the traditional experience based PI parameters tuning method. In this paper, an improved chaotic particle swarm optimization (CPSO) method has been proposed to optimize the controller parameters. In the proposed method, multi-dimensional chaotic sequences generated by spatiotemporal chaos map are used as initial particles to get a better initial distribution and to avoid local minimums. Pareto optimal solutions are also used to avoid the weight selection difficulty of the multi-objectives. Simulation and experiment results show the effectiveness and superiority of the proposed method.

다중목적 최적화기 법을 이용한 SWAT 모형 수분매개변수의 자동보정 (Auto-calibration for the SWAT Model Hydrological Parameters Using Multi-objective Optimization Method)

  • 김학관;강문성;박승우;최지용;양희정
    • 한국농공학회논문집
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    • 제51권1호
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    • pp.1-9
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    • 2009
  • The objective of this paper was to evaluate the auto-calibration with multi-objective optimization method to calibrate the parameters of the Soil and Water Assessment Tool (SWAT) model. The model was calibrated and validated by using nine years (1996-2004) of measured data for the 384-ha Baran reservoir subwatershed located in central Korea. Multi-objective optimization was performed for sixteen parameters related to runoff. The parameters were modified by the replacement or addition of an absolute change. The root mean square error (RMSE), relative mean absolute error (RMAE), Nash-Sutcliffe efficiency index (EI), determination coefficient ($R^2$) were used to evaluate the results of calibration and validation. The statistics of RMSE, RMAE, EI, and $R^2$ were 4.66 mm/day, 0.53 mm/day 0.86, and 0.89 for the calibration period and 3.98 mm/day, 0.51 mm/day, 0.83, and 0.84 for the validation period respectively. The statistical parameters indicated that the model provided a reasonable estimation of the runoff at the study watershed. This result was illustrated with a multi-objective optimization for the flow at an observation site within the Baran reservoir watershed.

HCM 클러스터링과 유전자 알고리즘을 이용한 다중 퍼지 모델 동정 (Identification of Multi-Fuzzy Model by means of HCM Clustering and Genetic Algorithms)

  • 박호성;오성권
    • 제어로봇시스템학회:학술대회논문집
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    • 제어로봇시스템학회 2000년도 제15차 학술회의논문집
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    • pp.370-370
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    • 2000
  • In this paper, we design a Multi-Fuzzy model by means of HCM clustering and genetic algorithms for a nonlinear system. In order to determine structure of the proposed Multi-Fuzzy model, HCM clustering method is used. The parameters of membership function of the Multi-Fuzzy ate identified by genetic algorithms. A aggregate performance index with a weighting factor is used to achieve a sound balance between approximation and generalization abilities of the model. We use simplified inference and linear inference as inference method of the proposed Multi-Fuzzy mode] and the standard least square method for estimating consequence parameters of the Multi-Fuzzy. Finally, we use some of numerical data to evaluate the proposed Multi-Fuzzy model and discuss about the usefulness.

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분포형 모형의 다지점 보정 모듈 개발 - GRM 모형을 중심으로 - (Development of a Multi-Site Calibration Module of Distributed Model - The Case of GRM -)

  • 최윤석;최천규;김경탁
    • 한국지리정보학회지
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    • 제15권3호
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    • pp.103-118
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    • 2012
  • 분포형 모형은 유역내에서 공간 분포된 임의 지점의 유출해석 결과를 손쉽게 얻을 수 있다. 이때 다양한 특성을 가지는 소유역으로 구성된 유역의 경우, 소유역에 대해 신뢰성 있는 유출량을 얻기 위해서는 소유역별로 보정된 모형을 적용해야 한다. 본 연구에서는 관측 유량자료가 있는 소유역별로 모형을 보정할 수 있는 다지점 보정 기술을 개발하였다. 이를 위해서 다지점 보정 대상매개변수의 선정 및 적용 방법과 소유역 네트워크 정보를 설정하는 방법을 제시하였다. 또한 다지점 보정 모듈을 구현하기 위한 클래스를 설계하고 GUI를 개발하였으며, 소유역별로 설정된 매개 변수를 이용한 유출해석 절차를 정립하였다. 다지점 보정 모듈을 낙동강 수계 선산 유역($977km^2$)에 적용하였다. 적용결과 다지점 보정 모듈은 유역내 소유역에 대한 모형의 보정에 효과적으로 적용할 수 있었으며, 다지점 보정에 의해서 소유역의 유출해석 결과를 향상시킬 수 있었다.

비측정용 카메라를 이용한 Multi-Looking 카메라의 플랫폼 캘리브레이션 실험 연구 (Experiment on Camera Platform Calibration of a Multi-Looking Camera System using single Non-Metric Camera)

  • 이창노;이병길;어양담
    • 한국측량학회지
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    • 제26권4호
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    • pp.351-357
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    • 2008
  • 항공용 Multi-looking 카메라는 1대의 사진기 몸체에 5대의 카메라를 설치하여 동시에 1장의 연직사진과 4개의 경사사진을 획득하므로, 연직방향으로 촬영된 일반 항공사진에 비해 현장에 대한 다양한 정보를 제공한다. 연직사진용 카메라에 대한 경사사진용 카메라의 기하학적 관계는6개의 외부표정요소에 의해 모델링 될 수 있으며, 그 기하학적 관계가 결정되면 경사사진에 대한 외부표정요소는 연직사진의 외부표정요소로부터 계산될 수 있다. Multi-looking 카메라에서의 연직카메라와 경사카메라의 상대적 외부표정요소를 검사하기 위하여, 실내 캘리브레이션 타깃을 설치한 후 하나의 비측정용 디지털카메라를 사용하여 세 지점에서 촬영방향 바꿔가며 14장의 사진을 취득하였다. 카메라 자체검정에 의해 카메라의 내부표정요소와 각 사진에 대한 외부표정요소가 추정되었고, 연직사진에 대한 경사사진의 상대적 외부표정요소가 각 사진에 대한 외부표정요소로부터 계산되었다. 상대적 외부표정요소 중 회전각과 투영중심점 위치에 대한 오차가 지상좌표 추정에 미치는 영향이 각각 분석되었다.

다단계 다층 인공 신경회로망을 이용한 염색체 핵형 분류 (Chromosome Karyotype Classification using Multi-Step Multi-Layer Artificial Neural Network)

  • 장용훈;이권순;정형환;전계록
    • 대한의용생체공학회:학술대회논문집
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    • 대한의용생체공학회 1995년도 추계학술대회
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    • pp.197-200
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    • 1995
  • In this paper, we proposed the multi-step multi-layer artificial neural network(MMANN) to classify the chromosome, Which is used as a chromosome pattern classifier after learning. We extracted three chromosome morphological feature parameters such as centromeric index, relative length ratio, and relative area ratio by means of preprocessing method from ten chromosome images. The feature parameters of five chromosome images were used to learn neural network and the rest of them were used to classify the chromosome images. The experiment results show that the chromosome classification error is reduced much more, comparing with less feature parameters than that of the other researchers.

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Seafloor Classification Based on the Texture Analysis of Sonar Images Using the Gabor Wavelet

  • Sun, Ning;Shim, Tae-Bo
    • The Journal of the Acoustical Society of Korea
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    • 제27권3E호
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    • pp.77-83
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    • 2008
  • In the process of the sonar image textures produced, the orientation and scale factors are very significant. However, most of the related methods ignore the directional information and scale invariance or just pay attention to one of them. To overcome this problem, we apply Gabor wavelet to extract the features of sonar images, which combine the advantages of both the Gabor filter and traditional wavelet function. The mother wavelet is designed with constrained parameters and the optimal parameters will be selected at each orientation, with the help of bandwidth parameters based on the Fisher criterion. The Gabor wavelet can have the properties of both multi-scale and multi-orientation. Based on our experiment, this method is more appropriate than traditional wavelet or single Gabor filter as it provides the better discrimination of the textures and improves the recognition rate effectively. Meanwhile, comparing with other fusion methods, it can reduce the complexity and improve the calculation efficiency.

클러스터링 기법과 유전자 알고리즘에 의한 다중 퍼지 모델으 동정 (The Identification of Multi-Fuzzy Model by means of HCM and Genetic Algorithms)

  • 박병준;이수구;오성권;김현기
    • 대한전기학회:학술대회논문집
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    • 대한전기학회 2000년도 하계학술대회 논문집 D
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    • pp.3007-3009
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    • 2000
  • In this paper, we design a Multi-Fuzzy model by means of clustering method and genetic algorithms for a nonlinear system. In order to determine structure of the proposed Multi-Fuzzy model. HCM clustering method is used. The parameters of membership function of the Multi-Fuzzy are identified by genetic algorithms. We use simplified inference and linear inference as inference method of the proposed Multi-Fuzzy model and the standard least square method for estimating consequence parameters of the Multi-Fuzzy. Finally, we use some of numerical data to evaluate the proposed Multi-Fuzzy model and discuss about the usefulness.

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다중 퍼지 추론 모델에 의한 비선형 시스템의 최적 동정 (The optimal identification of nonlinear systems by means of Multi-Fuzzy Inference model)

  • 정회열;오성권
    • 대한전기학회:학술대회논문집
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    • 대한전기학회 2001년도 하계학술대회 논문집 D
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    • pp.2669-2671
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    • 2001
  • In this paper, we propose design a Multi-Fuzzy Inference model structure. In order to determine structure of the proposed Multi-Fuzzy Inference model, HCM clustering method is used. The parameters of membership function of the Multi-Fuzzy are identified by genetic algorithms. A aggregate performance index with a weighting factor is used to achieve a sound balance between approximation and generalization abilities of the model. We use simplified inference and linear inference as inference method of the proposed Multi-Fuzzy model and the standard least square method for estimating consequence parameters of the Multi-Fuzzy. Finally, we use some of numerical data to evaluate the proposed Multi-Fuzzy model and discuss about the usefulness.

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