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Published in: Social Network Analysis and Mining 1/2021

01-12-2021 | Review Paper

Community detection using unsupervised machine learning techniques on COVID-19 dataset

Authors: Laxmi Chaudhary, Buddha Singh

Published in: Social Network Analysis and Mining | Issue 1/2021

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Abstract

COVID-19 has been considered to be the most destructive pandemic ever happened in the history of mankind. The worldwide research community has put a tenacious effort to carry out research on the COVID-19 to analyse its impact on economic, medical and sociolgoical fields. They are trying to solve many crucial issues related to this disease and derive strategies to deal with this global pandemic. In this paper, we have analysed the trend, countries affected regionally and the variation of cases at the country level on COVID-19 dataset. We have used the Principal component analysis on the COVID-19 dataset variables to reduce the dimensionality and find the most significant variables. Further, we have unveiled the hidden community structure of countries by applying the unsupervised clustering approach, K-means. We have compared the results with the K-means method. The communities achieved after applying the PCA are more precise. The resulted communities can be beneficial to researchers, scientists, sociologists, different policy makers and managers of health sector.

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Literature
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go back to reference Singh, Ravi Pratap, et al. (2020) Internet of things (IoT) applications to fight against COVID-19 pandemic. Diabetes Metabolic Syndrome: Clinical Research Reviews. Singh, Ravi Pratap, et al. (2020) Internet of things (IoT) applications to fight against COVID-19 pandemic. Diabetes Metabolic Syndrome: Clinical Research Reviews.
Metadata
Title
Community detection using unsupervised machine learning techniques on COVID-19 dataset
Authors
Laxmi Chaudhary
Buddha Singh
Publication date
01-12-2021
Publisher
Springer Vienna
Published in
Social Network Analysis and Mining / Issue 1/2021
Print ISSN: 1869-5450
Electronic ISSN: 1869-5469
DOI
https://doi.org/10.1007/s13278-021-00734-2

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