• Title/Summary/Keyword: 파라미터 예측

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  • Kim, Jeong-Yeop
    • Journal of the KSME
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    • v.55 no.2
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    • pp.30-34
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    • 2015
  • 이 글에서는 일반적인 피로균열진전거동과 균열진전에 영향을 미치는 파라미터, 그리고 실제 하중하에서 피로균열진전을 예측하기 위한 방법에 대해 소개하고자 한다.

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Prediction of Disk Cutter Wear Considering Ground Conditions and TBM Operation Parameters (지반 조건과 TBM 운영 파라미터를 고려한 디스크 커터 마모 예측)

  • Yunseong Kang;Tae Young Ko
    • Tunnel and Underground Space
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    • v.34 no.2
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    • pp.143-153
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    • 2024
  • Tunnel Boring Machine (TBM) method is a tunnel excavation method that produces lower levels of noise and vibration during excavation compared to drilling and blasting methods, and it offers higher stability. It is increasingly being applied to tunnel projects worldwide. The disc cutter is an excavation tool mounted on the cutterhead of a TBM, which constantly interacts with the ground at the tunnel face, inevitably leading to wear. In this study quantitatively predicted disc cutter wear using geological conditions, TBM operational parameters, and machine learning algorithms. Among the input variables for predicting disc cutter wear, the Uniaxial Compressive Strength (UCS) is considerably limited compared to machine and wear data, so the UCS estimation for the entire section was first conducted using TBM machine data, and then the prediction of the Coefficient of Wearing rate(CW) was performed with the completed data. Comparing the performance of CW prediction models, the XGBoost model showed the highest performance, and SHapley Additive exPlanation (SHAP) analysis was conducted to interpret the complex prediction model.

Development and Application of the Mode Choice Models According to Zone Sizes (분석대상 규모에 따른 수단분담모형의 추정과 적용에 관한 연구)

  • Kim, Ju-Yeong;Lee, Seung-Jae;Kim, Do-Gyeong;Jeon, Jang-U
    • Journal of Korean Society of Transportation
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    • v.29 no.6
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    • pp.97-106
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    • 2011
  • Mode choice model is an essential element for estimating- the demand of new means of transportation in the planning stage as well as in the establishment phase. In general, current demand analysis model developed for the mode choice analysis applies common parameters of utility function in each region which causes inaccuracy in forecasting mode choice behavior. Several critical problems from using common parameters are: a common parameter set can not reflect different distribution of coefficient for travel time and travel cost by different population. Consequently, the resulting model fails to accurately explain policy variables such as travel time and travel cost. In particular, the nonlinear logit model applied to aggregation data is vulnerable to the aggregation error. The purpose of this paper is to consider the regional characteristics by adopting the parameters fitted to each area, so as to reduce prediction errors and enhance accuracy of the resulting mode choice model. In order to estimate parameter of each area, this study used Household Travel Survey Data of Metropolitan Transportation Authority. For the verification of the model, the value of time by marginal rate of substitution is evaluated and statistical test for resulting coefficients is also carried out. In order to crosscheck the applicability and reliability of the model, changes in mode choice are analyzed when Seoul subway line 9 is newly opened and the results are compared with those from the existing model developed without considering the regional characteristics.

A Comparative Study of Speech Parameters for Speech Recognition Neural Network (음성 인식 신경망을 위한 음성 파라키터들의 성능 비교)

  • Kim, Ki-Seok;Im, Eun-Jin;Hwang, Hee-Yung
    • The Journal of the Acoustical Society of Korea
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    • v.11 no.3
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    • pp.61-66
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    • 1992
  • There have been many researches that uses neural network models for automatic speech recognition, but the main trend was finding the neural network models and learning rules appropriate to automatic speech recognition. However, the choice of the input speech parameter for the neural network as well as neural network model itself is a very important factor for the improvement of performance of the automatic speech recognition system using neural network. In this paper we select 6 speech parameters from surveys of the speech recognition papers which uses neural networks, and analyze the performance for the same data and the same neural network model. We use 8 sets of 9 Korean plosives and 18 sets of 8 Korean vowels. We use recurrent neural network and compare the performance of the 6 speech parameters while the number of nodes is constant. The delta cepstrum of linear predictive coefficients showed best result and the recognition rates are 95.1% for the vowels and 100.0% for plosives.

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The Reduction of the Computation Speed using LSP Distribution in G.723-1 Vocoder (LSP 분포 특성을 이용한 G.723.1 보코더의 계산량 감소)

  • 이희원;배명진
    • Proceedings of the IEEK Conference
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    • 2000.09a
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    • pp.127-130
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    • 2000
  • 현재까지 발표된 음성 부호화기 중에서 저전송률에서 양호한 음질을 제공하는 CELP 계열 보코더에 대한연구가 가장 많이 이루어지고 있다. 그 중에서 G.723.1부호화기는 인터넷 폰이나 화상회의 등 상용서비스로 개발되었다. G.723.1 부호화기에서는 음성신호의 선형예측 방법 중 LSP 파라미터를 이용하는 방법이 많이 사용된다. 이것은 LSP 파라미터의 전송형 특징 중 낮은 전송률에서도 왜곡이 적고 선형보간 특성이 뛰어나기 때문이다. 하지만 LPC 계수를 LSP 파라미터로 변환하기 위해서는 많은 계산시간이 소요된다[1]. 본 논문에서는 G.723.1 보코더에서 LSP 변환 시 다항식의 근을 찾는 순서를 음성신호의 LSP 분포 특성에 맞게 조정함으로써 전체 계산시간을 평균 2% 단축하였다.

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Robust 2D Texture Map and 3D Model Based 2.5D Object Tracking and Camara Calibration (2D 텍스쳐맵과 3D 모델을 이용한 2.5D 물체 추적 및 카메라 캘리브레이션 알고리즘)

  • Hong, Hyun-Seok;Chung, Myung-Jin
    • Proceedings of the KIEE Conference
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    • 2006.07d
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    • pp.1999-2000
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    • 2006
  • 기존 2D 추적기들은 영상에서 특정 평면 영역을 원근 투영하에서 만족할 만한 추적결과를 보여주었다. 하지만 2D 추적기는 2D 영역들로 이루어진 3D물체를 영상에서 추적하는 경우, 물체자신의 회전에 의해 가려지거나 새로 나타나는 영역에 대해 대응하지 못하여 추적에 실패하게 되지만, 3D 정보를 이용한다면 이러한 사라짐과 나타나는 영역을 예측하고 완벽하게 추적할 수 있게 된다. 본 연구에서는 일련의 영상으로부터 3D 모델과 2D 텍스쳐맵을 추출하고, 이를 이용하여 3D 물체의 회전과 평행이동 움직임을 추적한다. 또한 카메라의 줌 파라미터를 모델링하고 추적기 알고리즘에 추가하여, 물체의 3차원 파라미터의 추적과 동시에 카메라 줌 파라미터를 추적하였다.

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Adaptive PID Controller for Nonlinear Systems using Fuzzy Model (퍼지 모델을 이용한 비선형 시스템의 적응 PID 제어기)

  • Kim, Jong-Hua;Lee, Won-Chang;Kang, Geun-Taek
    • Journal of the Korean Institute of Intelligent Systems
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    • v.13 no.1
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    • pp.85-90
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    • 2003
  • This paper presents an adaptive PID control scheme for nonlinear system. TSK(Takagi-Sugeno-Kang) fuzzy model is used to estimate the error of control input, and the parameters of PID controller are adapted using the error. The parameters of TSK fuzzy model also adapted to plant. The proposed algorithm allows designing adaptive PID controller which Is adapted to the uncertainty of nonlinear plant and the change of parameters. The usefulness of the proposed algorithm is also certificated by the several simulations.

A study on fretting fatigue life prediction using multiaxial fatigue parameters (다축 피로 파라미터를 이용한 프레팅 피로 수명 예측에 관한 연구)

  • Kwak D.H.;Roh H.R.;Kim J.K.;Cho S.B.
    • Proceedings of the Korean Society of Precision Engineering Conference
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    • 2006.05a
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    • pp.359-360
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    • 2006
  • Recently, a lot of work and interest has been devoted to the development of multiaxial fatigue parameters for fretting fatigue life prediction. Many of these parameters have been reviewed in the literature for simple geometries like a cylinder-on-flat contact configuration. The purpose of this study was to estimate fretting fatigue life using critical plane approach which is one of the multiaxial fatigue theories.

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Lumped Model Parameter Estimation of Floating Mass Transducers based on Sequential Quadratic Programming Method for IMEHDs (Sequential Quadratic Programming 방법을 이용한 인공중이용 플로팅 매스 트랜스듀서의 집중 모델 파라미터 추정)

  • Park, I.Y.
    • Journal of rehabilitation welfare engineering & assistive technology
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    • v.5 no.1
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    • pp.59-64
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    • 2011
  • In this paper, the lumped element model parameter estimation method and its implemented estimation software for fabricated floating mass transducers of IMEHDs have been presented so that the estimated parameter values could be compared with the designed ones and applied to predict the output performance when the transducers were implanted into human ears. The presented method is based on the sequential quadratic programming (SQP) for estimating parameters in the transducer's lumped model and has been implemented by the use of LabVIEW graphical language. Using the implemented estimation software, the accuracy of parameter estimation has been verified and our implemented estimation method has been evaluated by the comparison of the estimated transducer parameter values with the designed ones for a practically fabricated floating mass transducer for IMEHDs.

Optimization of panel parameters and drive signals for high-speed matrix addressing of a bistable twisted-nematic LCD (쌍안정 TN LCD의 고속 매트릭스 어드레싱을 위한 패널 파라미터와 구동 파형의 최적화)

  • 이기동;박구현;장기철;윤태훈;김재창;이응상
    • Korean Journal of Optics and Photonics
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    • v.9 no.6
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    • pp.417-422
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    • 1998
  • In this paper we introduce a method to optimize panel parameters and drive signals in a matrix-adressed bistable twsited-nematic (BTN) liquid crystal display (LCD) panel. We measured the effect of data pulses on optical switching characteristics in a BTN LC cell to model the effect theoretically. We introduce a weighting function to model the effect of data pulses on the switching energy as a function of time. Once the weighting function is known, we can estimate the maximum number of lines for multiplexing operation at a given frame rate by calculating the minimum data pulse width. By characterizing a unit cell as we change panel parameters (for example, d/p ratio), we can optimize parameters for high-speed operation. We found that our theoretical predictions agree very well with experimental results.

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