Literature DB >> 33802247

Using Social Network Analysis to Identify Spatiotemporal Spread Patterns of COVID-19 around the World: Online Dashboard Development.

Kyent-Yon Yie1, Tsair-Wei Chien2, Yu-Tsen Yeh3, Willy Chou4, Shih-Bin Su5.   

Abstract

The COVID-19 pandemic has spread widely around the world. Many mathematical models have been proposed to investigate the inflection point (IP) and the spread pattern of COVID-19. However, no researchers have applied social network analysis (SNA) to cluster their characteristics. We aimed to illustrate the use of SNA to identify the spread clusters of COVID-19. Cumulative numbers of infected cases (CNICs) in countries/regions were downloaded from GitHub. The CNIC patterns were extracted from SNA based on CNICs between countries/regions. The item response model (IRT) was applied to create a general predictive model for each country/region. The IP days were obtained from the IRT model. The location parameters in continents, China, and the United States were compared. The results showed that (1) three clusters (255, n = 51, 130, and 74 in patterns from Eastern Asia and Europe to America) were separated using SNA, (2) China had a shorter mean IP and smaller mean location parameter than other counterparts, and (3) an online dashboard was used to display the clusters along with IP days for each country/region. Spatiotemporal spread patterns can be clustered using SNA and correlation coefficients (CCs). A dashboard with spread clusters and IP days is recommended to epidemiologists and researchers and is not limited to the COVID-19 pandemic.

Entities:  

Keywords:  COVID-19; correlation coefficient; daily confirmed case; item response model; social network analysis; spatiotemporal spread pattern

Mesh:

Year:  2021        PMID: 33802247      PMCID: PMC7967593          DOI: 10.3390/ijerph18052461

Source DB:  PubMed          Journal:  Int J Environ Res Public Health        ISSN: 1660-4601            Impact factor:   3.390


  29 in total

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4.  Support Vector Machine Classification of Drunk Driving Behaviour.

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Journal:  Int J Environ Res Public Health       Date:  2017-01-23       Impact factor: 3.390

5.  Clinical features of patients infected with 2019 novel coronavirus in Wuhan, China.

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Journal:  Lancet       Date:  2020-01-24       Impact factor: 79.321

6.  Using the IPcase Index with Inflection Points and the Corresponding Case Numbers to Identify the Impact Hit by COVID-19 in China: An Observation Study.

Authors:  Lin-Yen Wang; Tsair-Wei Chien; Willy Chou
Journal:  Int J Environ Res Public Health       Date:  2021-02-18       Impact factor: 3.390

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  12 in total

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Journal:  Medicine (Baltimore)       Date:  2022-07-08       Impact factor: 1.817

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4.  Understanding the uneven spread of COVID-19 in the context of the global interconnected economy.

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5.  Applications, features and key indicators for the development of Covid-19 dashboards: A systematic review study.

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6.  Comparison of prediction accuracies between two mathematical models for the assessment of COVID-19 damage at the early stage and throughout 2020.

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7.  Authors who contributed most to the fields of hemodialysis and peritoneal dialysis since 2011 using the hT-index: Bibliometric analysis.

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9.  Using the absolute advantage coefficient (AAC) to measure the strength of damage hit by COVID-19 in India on a growth-share matrix.

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10.  Complex Contact Network of Patients at the Beginning of an Epidemic Outbreak: An Analysis Based on 1218 COVID-19 Cases in China.

Authors:  Zhangbo Yang; Jiahao Zhang; Shanxing Gao; Hui Wang
Journal:  Int J Environ Res Public Health       Date:  2022-01-08       Impact factor: 3.390

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