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Disaggregate Traffic Mode Choice Model Based on Combination of Revealed and Stated Preference Data
作者姓名:焦朋朋  陆化普  杨朗
作者单位:Institute of Transportation Engineering Tsinghua University Beijing 100084,China,Institute of Transportation Engineering Tsinghua University Beijing 100084,China,Institute of Transportation Engineering Tsinghua University Beijing 100084,China
基金项目:SupportedbytheNationalNaturalScienceFoundationofChina(No.50178042)
摘    要:Introduction The disaggregate model is one of the most important models for modal split forecasting and is widely used in transportation predictions.Unlike conventional ag-gregate models,the disaggregate model deals with in-dividuals who make transport de…

关 键 词:分解模型  交通工程  模态分割  转移率
收稿时间:2004-10-17
修稿时间:2004-10-172004-12-29

Disaggregate Traffic Mode Choice Model Based on Combination of Revealed and Stated Preference Data
JIAO Pengpeng,LU Huapu,YANG Lang.Disaggregate Traffic Mode Choice Model Based on Combination of Revealed and Stated Preference Data[J].Tsinghua Science and Technology,2006,11(3):351-356.
Authors:JIAO Pengpeng  LU Huapu  YANG Lang
Institution:Institute of Transportation Engineering, Tsinghua University, Beijing 100084, China
Abstract:The conventional traffic demand forecasting methods based on revealed preference (RP) data are not able to predict the modal split. Passengers' stated intentions are indispensable for modal split forecasting and evaluation of new traffic modes. This paper analyzed the biases and errors included in stated preference data, put forward the new stochastic utility functions, and proposed an unbiased disaggregate model and its approximate model based on the combination of RP and stated preference (SP) data, with analysis of the parameter estimation algorithm. The model was also used to forecast rail transit passenger volumes to the Beijing Capital International Airport and the shift ratios from current traffic modes to rail transit. Experimental results show that the model can greatly increase forecasting accuracy of the modal split ratio of current traffic modes and can accurately forecast the shift ratios from current modes to the new mode.
Keywords:disaggregate model  stated preference data  revealed preference data  modal split  shift ratio
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