How to Analyze Political Attention with Minimal Assumptions and Costs

被引:397
作者
Quinn, Kevin M. [1 ]
Monroe, Burt L. [2 ]
Colaresi, Michael [3 ]
Crespin, Michael H. [4 ]
Radev, Dragomir R. [5 ,6 ]
机构
[1] Univ Calif Berkeley, Berkeley, CA 94720 USA
[2] Penn State Univ, Quantitat Social Sci Initiat, University Pk, PA 16802 USA
[3] Michigan State Univ, E Lansing, MI 48824 USA
[4] Univ Georgia, Athens, GA 30602 USA
[5] Univ Michigan, Dept Elect Engn & Comp Sci, Ann Arbor, MI 48109 USA
[6] Univ Michigan, Sch Informat, Ann Arbor, MI 48109 USA
关键词
TIME-SERIES; POSITIONS; WORDS;
D O I
10.1111/j.1540-5907.2009.00427.x
中图分类号
D0 [政治学、政治理论];
学科分类号
0302 ; 030201 ;
摘要
Previous methods of analyzing the substance of political attention have had to make several restrictive assumptions or been prohibitively costly when applied to large-scale political texts. Here, we describe a topic model for legislative speech, a statistical learning model that uses word choices to infer topical categories covered in a set of speeches and to identify the topic of specific speeches. Our method estimates, rather than assumes, the substance of topics, the keywords that identify topics, and the hierarchical nesting of topics. We use the topic model to examine the agenda in the U.S. Senate from 1997 to 2004. Using a new database of over 118,000 speeches (70,000,000 words) from the Congressional Record, our model reveals speech topic categories that are both distinctive and meaningfully interrelated and a richer view of democratic agenda dynamics than had previously been possible.
引用
收藏
页码:209 / 228
页数:20
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