• 제목/요약/키워드: logistic information

검색결과 1,383건 처리시간 0.025초

시스템 상호 운용성을 위한 웹 서비스 기반의 RFID 미들웨어 구현 (An Implementation of The RFID Middleware Based on Web-Service System Mutual Applications)

  • 김의창;박명수
    • 한국정보시스템학회지:정보시스템연구
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    • 제18권3호
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    • pp.71-88
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    • 2009
  • Recently, RFID(Radio Frequency IDentification) has emerged as the main technology in the logistic services. When the existing recognition technology based on bar codes brings about lots of problem due its own limits. RFID becomes the center of attention to solve them. However, RFID is not without any obstacles : companies have their own operating systems. while RFID is developed regardless of each campany's special features. RFID middleware system based on web service is expected to remove these obstacles. This paper shows how to operate the middleware based on web service and to lay in the DB the tag informations taken from reader system Middle assures that companies adopting RFID system for their logistic service are given athptabwebty to any systems whatsoever, avaweable by way of defining logistic information, tag information and reader information. For this purse, we implement as the basic web service a middleware system that turns all data into XML(eXtensatle Markupmsngunfo) of SOAP(Simple Object Access Protocol), the standard data.

Probability Estimation of Snow Damage on Sugi (Cryptomeria japonica) Forest Stands by Logistic Regression Model in Toyama Prefecture, Japan

  • Kamo, Ken-Ichi;Yanagihara, Hirokazu;Kato, Akio;Yoshimoto, Atsushi
    • Journal of Forest and Environmental Science
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    • 제24권3호
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    • pp.137-142
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    • 2008
  • In this paper, we apply a logistic regression model to the data of snow damage on sugi (Cryptomeria japonica) occurred in Toyama prefecture (in Japan) in 2004 for estimating the risk probability. In order to specify the factors effecting snow damage, we apply a model selection procedure determining optimal subset of explanatory variables. In this process we consider the following 3 information criteria, 1) Akaike's information criterion, 2) Baysian information criterion, 3) Bias-corrected Akaike's information criterion. For the selected variables, we give a proper interpretation from the viewpoint of natural disaster.

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Logistic regression model for major separation rate

  • 최재성
    • Journal of the Korean Data and Information Science Society
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    • 제13권2호
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    • pp.129-138
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    • 2002
  • This paper deals with logistic regression models for analysing separation rates from majors. The model building procedure shows how to incoporate the effects of some factors causing from three-way nested sampling scheme and discusses what type of characteristics as independent variables directly affecting the rates should be considered.

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차세대 디스플레이 기술의 예측에 관한 연구 (A Study on Technological Forecasting of Next-Generation Display Technology)

  • 남기웅;박상성;신영근;정원교;장동식
    • 한국산학기술학회논문지
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    • 제10권10호
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    • pp.2923-2934
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    • 2009
  • 본 논문에서는 차세대 디스플레이 기술에 대해서 기술의 추세를 예측하였다. 차세대 디스플레이 기술은 최근에 급부상 하는 기술로 연구개발을 수행하는데 있어 추후 연구 방향을 설정하고 기술전략을 세우는데 불확실성을 줄여주기 위해 기술의 미래 발전 방향이나 추세에 대해서 예측을 해 보는 것이 중요하다. 이렇게 함으로써 연구개발 목표를 좀 더 명확히 설정할 수 있고 불필요한 투자를 방지할 수 있다. 본 논문에서는 차세대 디스플레이 기술에 대해서 특허 데이터를 사용하여 정량적인 예측을 수행하였다. 예측 방법으로는 Gompertz, Logistic, Bass모형을 사용하였다. 이 세 모형들은 과거 시장에서의 제품의 확산과정을 설명하는데 사용되었던 모형이다. Gompertz, Logistic모형은 시장의 수요예측 뿐만 아니라 기술의 수요예측에도 주로 쓰였기 때문에 본 논문에서도 이 두 모형을 적용하였다. 하지만 Gompertz, Logistic 모형은 시장에서의 내부 효과에 의한 확산만을 반영한 모형이고 성장의 상한 값을 추정하는 데 있어 추정이 쉽지 않다는 단점이 있다. 기술의 수요도 시장에서의 제품의 확산처럼 기술혁신에 의한 외부 효과와 산업으로 전파될 때의 내부효과가 함께 수요의 확산에 영향을 끼칠 것이라고 판단하여 본 논문에서는 시장에서의 제품 확산의 외부효과와 내부효과를 동시에 고려한 Bass모형도 함께 적용하여 예측을 수행하였다. 또한 Gompertz, Logistic 모형의 상한 값을 Bass모형을 통해 객관적으로 추정하여 예측을 수행함으로써 두 모형의 단점을 보완하였다.

APPLICATION OF LOGISTIC REGRESSION MODEL AND ITS VALIDATION FOR LANDSLIDE SUSCEPTIBILITY MAPPING USING GIS AND REMOTE SENSING DATA AT PENANG, MALAYSIA

  • LEE SARO
    • 대한원격탐사학회:학술대회논문집
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    • 대한원격탐사학회 2004년도 Proceedings of ISRS 2004
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    • pp.310-313
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    • 2004
  • The aim of this study is to evaluate the hazard of landslides at Penang, Malaysia, using a Geographic Information System (GIS) and remote sensing. Landslide locations were identified in the study area from interpretation of aerial photographs and from field surveys. Topographical and geological data and satellite images were collected, processed, and constructed into a spatial database using GIS and image processing. The factors chosen that influence landslide occurrence were: topographic slope, topographic aspect, topographic curvature and distance from drainage, all from the topographic database; lithology and distance from lineament, taken from the geologic database; land use from TM satellite images; and the vegetation index value from SPOT satellite images. Landslide hazardous area were analysed and mapped using the landslide-occurrence factors by logistic regression model. The results of the analysis were verified using the landslide location data and compared with probabilistic model. The validation results showed that the logistic regression model is better prediction accuracy than probabilistic model.

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Bayesian estimation in the generalized half logistic distribution under progressively type-II censoring

  • Kim, Yong-Ku;Kang, Suk-Bok;Se, Jung-In
    • Journal of the Korean Data and Information Science Society
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    • 제22권5호
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    • pp.977-989
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    • 2011
  • The half logistic distribution has been used intensively in reliability and survival analysis especially when the data is censored. In this paper, we provide Bayesian estimation of the shape parameter and reliability function in the generalized half logistic distribution based on progressively Type-II censored data under various loss functions. We here consider conjugate prior and noninformative prior and corresponding posterior distributions are obtained. As an illustration, we examine the validity of our estimation using real data and simulated data.

Prole likelihood estimation of generalized half logistic distribution under progressively type-II censoring

  • Kim, Yong-Ku;Kang, Suk-Bok;Han, Song-Hui;Seo, Jung-In
    • Journal of the Korean Data and Information Science Society
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    • 제22권3호
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    • pp.597-603
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    • 2011
  • The half logistic distribution has been used intensively in reliability and survival analysis especially when the data is censored. In this paper, we provide prole likelihood estimation of the shape parameter and scale parameter in the generalized half logistic distribution based on progressively Type-II censored data. We also introduce approximate maximum prole likelihood estimates for the scale parameter. As an illustration, we examine the validity of our estimation using real data and simulated data.

가중치 세분화 기반의 로지스틱 회귀분석 모델 (Fine-Grain Weighted Logistic Regression Model)

  • 이창환
    • 전자공학회논문지
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    • 제53권9호
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    • pp.77-81
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    • 2016
  • 로지스틱 회귀분석은 오랫동안 다양한 분야에서 예측을 위한 기술 혹은 변수 간의 관계를 설명하기 위하여 사용되어 왔다. 로지스틱 회귀분석에서 각 속성은 목적 값에 대한 중요도를 가지는데 본 연구에서는 이를 세분화하여 각 속성의 값에 따라서 중요도를 부여하는 새로운 방법을 제시한다. 점진적 하강법을 이용하여 알고리즘의 성능을 최대화하는 각 속성값 가중치의 값을 계산하였다. 제안된 방법은 다양한 데이터를 이용하여 실험하였고 본 연구의 속성값 기반 로지스틱 회귀분석 방법은 기존의 로지스틱 회귀분석보다 우수한 학습 능력을 보임을 알 수 있었다.

Bayesian analysis of an exponentiated half-logistic distribution under progressively type-II censoring

  • Kang, Suk Bok;Seo, Jung In;Kim, Yongku
    • Journal of the Korean Data and Information Science Society
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    • 제24권6호
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    • pp.1455-1464
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    • 2013
  • This paper develops maximum likelihood estimators (MLEs) of unknown parameters in an exponentiated half-logistic distribution based on a progressively type-II censored sample. We obtain approximate confidence intervals for the MLEs by using asymptotic variance and covariance matrices. Using importance sampling, we obtain Bayes estimators and corresponding credible intervals with the highest posterior density and Bayes predictive intervals for unknown parameters based on progressively type-II censored data from an exponentiated half logistic distribution. For illustration purposes, we examine the validity of the proposed estimation method by using real and simulated data.

Semiparametric kernel logistic regression with longitudinal data

  • Shim, Joo-Yong;Seok, Kyung-Ha
    • Journal of the Korean Data and Information Science Society
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    • 제23권2호
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    • pp.385-392
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    • 2012
  • Logistic regression is a well known binary classification method in the field of statistical learning. Mixed-effect regression models are widely used for the analysis of correlated data such as those found in longitudinal studies. We consider kernel extensions with semiparametric fixed effects and parametric random effects for the logistic regression. The estimation is performed through the penalized likelihood method based on kernel trick, and our focus is on the efficient computation and the effective hyperparameter selection. For the selection of optimal hyperparameters, cross-validation techniques are employed. Numerical results are then presented to indicate the performance of the proposed procedure.