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Dimension Reduction in Regression and Its Application to Macroeconomics

时间:2012-05-15

题 目:Dimension Reduction in Regression and Its Application to Macroeconomics

报告人:Jie Yang杨杰 (University of Illinois at Chicago)

时 间:2012年5月18日上午10:00(周五)

地 点:成人直播新楼酒店一层 K03教室

摘要:In this talk, we introduce a powerful statistical method called dimension reduction in regression, along with selected examples of its application, especially in Macroeconomics. The regular regression of a univariate response on a p-dimensional predictor vector x is to make inference on y given x. The goal of dimension reduction in regression is to find a d-dimensional predictor vector z, which is a smaller number of linear combinations of x, such that x can be replaced with z to make inference on y. Unlike the widely used method principal component analysis (PCA) in economics and other fields, the dimension reduction in regression takes into account the information contained in y during reducing the dimension of x, which is more efficient and powerful than the PCA method.

演讲人简介:杨杰博士,芝加哥大学统计学博士(2006),南开大学应用数学博士(2001),美国伊利诺伊大学芝加哥分校助理教授。

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