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Recurrence-Based Analyzes

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Recurrence-Based Analyzes Synopsis

This book introduces techniques developed in physics and physiology for characterizing and analyzing patterns in time series data to a broad audience of social scientists. In contrast to time-series regression and related techniques, recurrence quantification analysis (RQA) has its background in chaos and nonlinear dynamical systems-theory arguably very relevant to social processes. The goal of Recurrence-Based Analyses is to introduce readers to these techniques that can characterize a system's complexity, stability and instability, and conditions under which it transitions from one state to another. The authors illustrate concepts and techniques with relevant social science examples at different temporal scales: biweekly polling data on federal elections in Germany; daily values of three stock market indices; daily cases of SarsCov-19 in four countries during the pandemic; and second-by-second vocalizations of mothers and infants interacting recorded by motion cameras. This introduction to RQA serves as a useful supplement to undergraduate and graduate courses in computational social science, and also by researchers who seek new tools to address social scientific questions in new ways.

About This Edition

ISBN: 9781071872338
Publication date:
Author: Sebastian Wallot, Giuseppe Leonardi
Publisher: Sage an imprint of SAGE Publications
Format: Paperback
Pagination: 152 pages
Series: Quantitative Applications in the Social Sciences
Genres: Research methods: general
Social research and statistics
Psychological methodology