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      Topic Modeling in Management Research: Rendering New Theory from Textual Data

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          Common risk factors in the returns on stocks and bonds

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            Finding scientific topics.

            A first step in identifying the content of a document is determining which topics that document addresses. We describe a generative model for documents, introduced by Blei, Ng, and Jordan [Blei, D. M., Ng, A. Y. & Jordan, M. I. (2003) J. Machine Learn. Res. 3, 993-1022], in which each document is generated by choosing a distribution over topics and then choosing each word in the document from a topic selected according to this distribution. We then present a Markov chain Monte Carlo algorithm for inference in this model. We use this algorithm to analyze abstracts from PNAS by using Bayesian model selection to establish the number of topics. We show that the extracted topics capture meaningful structure in the data, consistent with the class designations provided by the authors of the articles, and outline further applications of this analysis, including identifying "hot topics" by examining temporal dynamics and tagging abstracts to illustrate semantic content.
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              Culture and Cognition

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                Author and article information

                Journal
                Academy of Management Annals
                ANNALS
                Academy of Management
                1941-6520
                1941-6067
                July 2019
                July 2019
                : 13
                : 2
                : 586-632
                Affiliations
                [1 ]University of Alberta
                [2 ]Erasmus University
                [3 ]London Business School
                [4 ]Claremont Graduate University
                [5 ]University of Toronto
                Article
                10.5465/annals.2017.0099
                37619277-d7ff-4342-819e-ae90ce78f83b
                © 2019
                History

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