• 제목/요약/키워드: Binary Logit Model

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A marginal logit mixed-effects model for repeated binary response data

  • Choi, Jae-Sung
    • Journal of the Korean Data and Information Science Society
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    • 제19권2호
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    • pp.413-420
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    • 2008
  • This paper suggests a marginal logit mixed-effects for analyzing repeated binary response data. Since binary repeated measures are obtained over time from each subject, observations will have a certain covariance structure among them. As a plausible covariance structure, 1st order auto-regressive correlation structure is assumed for analyzing data. Generalized estimating equations(GEE) method is used for estimating fixed effects in the model.

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Application of GLIM to the Binary Categorical Data

  • Sok, Yong-U
    • 한국국방경영분석학회지
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    • 제25권2호
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    • pp.158-169
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    • 1999
  • This paper is concerned with the application of generalized linear interactive modelling(GLIM) to the binary categorical data. To analyze the categorical data given by a contingency table, finding a good-fitting loglinear model is commonly adopted. In the case of a contingency table with a response variable, we can fit a logit model to find a good-fitting loglinear model. For a given $2^4$ contingency table with a binary response variable, we show the process of fitting a loglinear model by fitting a logit model using GLIM and SAS and then we estimate parameters to interpret the nature of associations implied by the model.

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The Confidence Intervals for Logistic Model in Contingency Table

  • Cho, Tae-Kyoung
    • Communications for Statistical Applications and Methods
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    • 제10권3호
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    • pp.997-1005
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    • 2003
  • We can use the logistic model for categorical data when the response variables are binary data. In this paper we consider the problem of constructing the confidence intervals for logistic model in I${\times}$J${\times}$2 contingency table. These constructions are simplified by applying logit transformation. This transforms the problem to consider linear form which called the logit model. After obtaining the confidence intervals for the logit model, the reverse transform is applied to obtain the confidence intervals for the logistic model.

직장인의 승용차 소유여부 선택행태에 관한 연구 (A Logit Analysis of Urban Workers' Auto Owenership Choice)

  • 윤대식;김기혁;김경식;김언동
    • 대한교통학회지
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    • 제13권4호
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    • pp.61-77
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    • 1995
  • The main objective of this research is the development of a logit model of urban workers' auto ownership choice. For the utility specification. a variety of behavioral hypotheses about the factors which affect the urban workers' auto ownership choice are considered. Based on the behavioral hypotheses, a binary logit model of auto ownership is estimated. Empirical estimation is based on a sample of workers taken in Daegu City(1994). The binary logit model of auto ownership development in this paper provides reasonable results in terms of behavioral and statistical considerations. Furthermore, this paper develops several submarket models of auto ownership choice. Market segmentation was made using age, sex, income, home-to-work time distance. It is found that the estimated results with market segmentation are also reasonable. Finally future directions of model development are suggested.

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고속도로 연계성을 반영한 고속철도 수단선택모형 개발 및 적용 (Development of Mode Choice Model and Applications Considering Connectivity of Express Way)

  • 조항웅;정성봉;김시곤;오재학
    • 한국철도학회논문집
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    • 제14권4호
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    • pp.383-389
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    • 2011
  • 지금까지 고속철도와 고속도로의 계획 및 건설은 시설 간 연계 환승에 대한 고려 없이 개별시설 확충 위주로 진행되었으며. 이로 인해 시설의 효율적 투자 및 활용은 이루어지지 않았다. 본 연구에서는 고속도로 연계성 향상으로 고속철도 수단선택행태에 미치는 영향을 다항로짓모형(Multinominal Logit Model)과 이항로짓모형(Binary Logit Model)을 활용하여 분석하였다. 모형개발을 위한 설문조사는 고속철도, 고속버스, 장거리 승용차 이용자를 대상으로 통행실태조사와 진술선호조사를 수행하였으며, 이를 통해 고속철도와 연계 환승수단에 대한 수단분담모형을 구축하였다. 수단선택모형을 통하여 고속도로와 고속철도가 연계 시 동탄역을 대상으로 사례분석을 수행한 결과 서울~부산 간 약 2시간의 통행시간이 단축되었으며, 이로 인해 약 30%의 수요증가 효과가 있는 것으로 분석되었다. 본 연구를 통하여 고속철도와 고속도로의 계획 시 연계 환승을 고려하여 건설 및 운영이 이루어질 경우, 고속철도의 이동성 기능과 고속도로의 접근성 기능을 결합함으로써 수단간 효율성을 극대화할 수 있을 것으로 판단된다.

Sampling Based Approach to Bayesian Analysis of Binary Regression Model with Incomplete Data

  • Chung, Young-Shik
    • Journal of the Korean Statistical Society
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    • 제26권4호
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    • pp.493-505
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    • 1997
  • The analysis of binary data appears to many areas such as statistics, biometrics and econometrics. In many cases, data are often collected in which some observations are incomplete. Assume that the missing covariates are missing at random and the responses are completely observed. A method to Bayesian analysis of the binary regression model with incomplete data is presented. In particular, the desired marginal posterior moments of regression parameter are obtained using Meterpolis algorithm (Metropolis et al. 1953) within Gibbs sampler (Gelfand and Smith, 1990). Also, we compare logit model with probit model using Bayes factor which is approximated by importance sampling method. One example is presented.

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고령층의 사회경제적 특성을 고려한 주택연금 이용 및 만족도 결정요인 분석 (A Study on Determinants of Use and Satisfaction of Reverse Mortgage Considering Socioeconomic Characteristics of the Elderly)

  • 이재송;최열
    • 대한토목학회논문집
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    • 제37권2호
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    • pp.437-444
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    • 2017
  • 본 연구의 목적은 고령층의 사회경제적 특성이 주택연금 이용 및 만족도에 영향을 미치는 요인을 실증분석하는 것이다. 2016년 주택연금 수요실태조사 자료를 바탕으로 이항로짓모형과 순서형로짓모형을 통한 실증분석을 실시하였다. 우선, 이항로짓모형을 활용하여 주택연금의 이용의 결정요인을 실증분석한 결과, 통계적으로 유의한 변수는 연령, 거주 지역, 보유자산, 가구원 수, 경제적으로 도움을 주고 있는 자녀의 유무로 나타났다. 구체적으로 연령이 높고, 수도권에 거주하며, 학력이 높을수록 주택연금의 이용 확률이 높아지는 것으로 추정되었다. 그리고 보유 자산이 작고, 가구원 수가 적으며, 경제적으로 도움을 주고 있는 자녀가 없는 경우에 주택연금의 이용 확률이 높아지는 것으로 추정되었다. 다음으로 순서형로짓모형을 활용하여 주택연금 이용 만족도를 실증분석한 결과, 통계적으로 유의한 변수는 연령, 성별, 거주 지역으로 추정되었다. 특히, 연령이 높고, 수도권에 거주하는 경우에는 주택연금 이용을 만족할 확률이 높아지는 것으로 추정되었다. 그리고 남성보다는 여성이 주택연금 이용에 만족할 확률이 높은 것으로 추정되었다. 실증분석 결과를 바탕으로 향후에 주택연금 가입률을 제고하고, 이용 만족도를 높이는 방안을 모색하는 것이 필요하다고 사료된다.

Investigation of Factors Influencing Loyalty Toward Cultural Arts Events in Korea: A Logit Model Approach

  • Young Hee Park;Hyeon-Cheol Kim
    • International journal of advanced smart convergence
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    • 제13권2호
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    • pp.94-102
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    • 2024
  • This study examines the factors influencing loyalty to cultural arts events using data from the Survey Report on National Culture and Arts Activity in 2022 and 2023. The dependent variable is a binary variable representing the intention to revisit in the future, which serves as a proxy for loyalty. Given that the dependent variable is binary, the logit model specification is employed to estimate the average marginal effects. The estimation results indicate that audience satisfaction exerts the strongest influence on loyalty in both years. It can be observed that participation in cultural arts events is the second most important variable in determining loyalty. This suggests that the government should support the expansion of the scope of these activities and the diversification of programs in order to facilitate greater participation in a wider range of cultural arts activities.

A Continuation-Ratio Logits Mixed Model for Structured Polytomous Data

  • Choi, Jae-Sung
    • Journal of the Korean Data and Information Science Society
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    • 제17권1호
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    • pp.187-193
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    • 2006
  • This paper shows how to use continuation-ratio logits for the analysis of structured polytomous data. Here, response categories are considered to have a nested binary structure. Thus, conditionally nested binary random variables can be defined in each step. Two types of factors are considered as independent variables affecting response probabilities. For the purpose of analyzing categorical data with binary nested strutures a continuation-ratio mixed model is suggested. Estimation procedure for the unknown parameters in a suggested model is also discussed in detail by an example.

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산업용지 수요예측 및 산업단지 입지선정에 관한 연구 - 안성시를 사례로 - (A Study on the Forecast of Industrial Land Demand and the Location Decision of Industrial Complexes - In Case of Anseong City)

  • 조규영;박헌수;정일훈
    • 농촌계획
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    • 제14권3호
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    • pp.37-51
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    • 2008
  • This study aims to build a model dealing with the location decision of new manufacturing firms and their land demand. The model is composed with 1) the binary logit model structure identifying a future probability of manufacturing firms to locate in a city and their land demand; and 2) the land use suitability of the land demand. The model was empirically tested in the case of Anseong City. We used establishment-level data for the manufacturing industry from the Report on Mining and Manufacturing Survey. 48 industry groups were scrutinized to find the location probability in the city and their land demand via logit model with the dependent variables: number of employment, land capital, building capital, total products, and value-added for a new industry since 2001. It is forecasted that the future land areas (to 2025) for the manufacturing industries in the city are $5.94km^2$ and additional land demand for clustering the existing industries scattered over the city is $2.lkm^2$. Five industrial complex locations were identified through the land use suitability analysis.