Measuring Group Differences in High-Dimensional Choices: Method and Application to Congressional Speech

被引:150
作者
Gentzkow, Matthew [1 ,2 ]
Shapiro, Jesse M. [2 ,3 ]
Taddy, Matt [4 ]
机构
[1] Stanford Univ, Dept Econ, Stanford, CA 94305 USA
[2] NBER, Cambridge, MA 02138 USA
[3] Brown Univ, Dept Econ, Providence, RI 02912 USA
[4] Amazon, Seattle, WA USA
基金
美国国家科学基金会;
关键词
Partisanship; polarization; machine learning; text analysis; LOG-LINEAR-MODELS; MEASURING SEGREGATION; PUBLIC-OPINION; POLITICAL POLARIZATION; TOPIC MODEL; MEDIA; LANGUAGE; FREQUENCY; POSITIONS; BEHAVIOR;
D O I
10.3982/ECTA16566
中图分类号
F [经济];
学科分类号
02 ;
摘要
We study the problem of measuring group differences in choices when the dimensionality of the choice set is large. We show that standard approaches suffer from a severe finite-sample bias, and we propose an estimator that applies recent advances in machine learning to address this bias. We apply this method to measure trends in the partisanship of congressional speech from 1873 to 2016, defining partisanship to be the ease with which an observer could infer a congressperson's party from a single utterance. Our estimates imply that partisanship is far greater in recent years than in the past, and that it increased sharply in the early 1990s after remaining low and relatively constant over the preceding century.
引用
收藏
页码:1307 / 1340
页数:34
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