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Text analysis in Python for social scientists : prediction and classification
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ISBN: 110896088X 1108958508 1108963099 Year: 2022 Publisher: Cambridge : Cambridge University Press,

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Abstract

Text contains a wealth of information about about a wide variety of sociocultural constructs. Automated prediction methods can infer these quantities (sentiment analysis is probably the most well-known application). However, there is virtually no limit to the kinds of things we can predict from text: power, trust, misogyny, are all signaled in language. These algorithms easily scale to corpus sizes infeasible for manual analysis. Prediction algorithms have become steadily more powerful, especially with the advent of neural network methods. However, applying these techniques usually requires profound programming knowledge and machine learning expertise. As a result, many social scientists do not apply them. This Element provides the working social scientist with an overview of the most common methods for text classification, an intuition of their applicability, and Python code to execute them. It covers both the ethical foundations of such work as well as the emerging potential of neural network methods.


Book
Text mining with MATLAB®
Author:
ISBN: 3030876950 3030876942 Year: 2021 Publisher: Cham, Switzerland : Springer,


Book
Text mining for information professionals : an uncharted territory
Authors: ---
ISBN: 3030850846 3030850854 9783030850852 Year: 2022 Publisher: Cham, Switzerland : Springer,

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