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Unsupervised Machine Learning for Clustering in Political and Social Research
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Unsupervised Machine Learning for Clustering in Political and Social Research
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Unsupervised Machine Learning for Clustering in Political and Social Research

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PublisherCambridge University Press
ISBN 10110879338X
Book FormatPaperback
Book DescriptionIn the age of data-driven problem-solving, applying sophisticated computational tools for explaining substantive phenomena is a valuable skill. Yet, application of methods assumes an understanding of the data, structure, and patterns that influence the broader research program. This Element offers researchers and teachers an introduction to clustering, which is a prominent class of unsupervised machine learning for exploring and understanding latent, non-random structure in data. A suite of widely used clustering techniques is covered in this Element, in addition to R code and real data to facilitate interaction with the concepts. Upon setting the stage for clustering, the following algorithms are detailed: agglomerative hierarchical clustering, k-means clustering, Gaussian mixture models, and at a higher-level, fuzzy C-means clustering, DBSCAN, and partitioning around medoids (k-medoids) clustering.
Number of Pages75 pages
ISBN 139781108793384
AuthorPhilip D. Waggoner
LanguageEnglish
Publication Date2021-01-28
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Unsupervised Machine Learning for Clustering in Political and Social Research
Unsupervised Machine Learning for Clustering in Political and Social Research
Sorry! This product is not available.
Available Soon

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