Can co-location be used as a proxy for face-to-face contacts?

Technological advances have led to a strong increase in the number of data collection efforts aimed at measuring co-presence of individuals at different spatial resolutions. It is however unclear how much co-presence data can inform us on actual face-to-face contacts, of particular interest to study...

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Published inEPJ data science Vol. 7; no. 1; pp. 11 - 18
Main Authors Génois, Mathieu, Barrat, Alain
Format Journal Article
LanguageEnglish
Published Berlin/Heidelberg Springer Berlin Heidelberg 08.05.2018
Springer Nature B.V
EDP Sciences
SpringerOpen
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ISSN2193-1127
2193-1127
DOI10.1140/epjds/s13688-018-0140-1

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Abstract Technological advances have led to a strong increase in the number of data collection efforts aimed at measuring co-presence of individuals at different spatial resolutions. It is however unclear how much co-presence data can inform us on actual face-to-face contacts, of particular interest to study the structure of a population in social groups or for use in data-driven models of information or epidemic spreading processes. Here, we address this issue by leveraging data sets containing high resolution face-to-face contacts as well as a coarser spatial localisation of individuals, both temporally resolved, in various contexts. The co-presence and the face-to-face contact temporal networks share a number of structural and statistical features, but the former is (by definition) much denser than the latter. We thus consider several down-sampling methods that generate surrogate contact networks from the co-presence signal and compare them with the real face-to-face data. We show that these surrogate networks reproduce some features of the real data but are only partially able to identify the most central nodes of the face-to-face network. We then address the issue of using such down-sampled co-presence data in data-driven simulations of epidemic processes, and in identifying efficient containment strategies. We show that the performance of the various sampling methods strongly varies depending on context. We discuss the consequences of our results with respect to data collection strategies and methodologies.
AbstractList Technological advances have led to a strong increase in the number of data collection efforts aimed at measuring co-presence of individuals at different spatial resolutions. It is however unclear how much co-presence data can inform us on actual face-to-face contacts, of particular interest to study the structure of a population in social groups or for use in data-driven models of information or epidemic spreading processes. Here, we address this issue by leveraging data sets containing high resolution face-to-face contacts as well as a coarser spatial localisation of individuals, both temporally resolved, in various contexts. The co-presence and the face-to-face contact temporal networks share a number of structural and statistical features, but the former is (by definition) much denser than the latter. We thus consider several down-sampling methods that generate surrogate contact networks from the co-presence signal and compare them with the real face-to-face data. We show that these surrogate networks reproduce some features of the real data but are only partially able to identify the most central nodes of the face-to-face network. We then address the issue of using such down-sampled co-presence data in data-driven simulations of epidemic processes, and in identifying efficient containment strategies. We show that the performance of the various sampling methods strongly varies depending on context. We discuss the consequences of our results with respect to data collection strategies and methodologies.
Abstract Technological advances have led to a strong increase in the number of data collection efforts aimed at measuring co-presence of individuals at different spatial resolutions. It is however unclear how much co-presence data can inform us on actual face-to-face contacts, of particular interest to study the structure of a population in social groups or for use in data-driven models of information or epidemic spreading processes. Here, we address this issue by leveraging data sets containing high resolution face-to-face contacts as well as a coarser spatial localisation of individuals, both temporally resolved, in various contexts. The co-presence and the face-to-face contact temporal networks share a number of structural and statistical features, but the former is (by definition) much denser than the latter. We thus consider several down-sampling methods that generate surrogate contact networks from the co-presence signal and compare them with the real face-to-face data. We show that these surrogate networks reproduce some features of the real data but are only partially able to identify the most central nodes of the face-to-face network. We then address the issue of using such down-sampled co-presence data in data-driven simulations of epidemic processes, and in identifying efficient containment strategies. We show that the performance of the various sampling methods strongly varies depending on context. We discuss the consequences of our results with respect to data collection strategies and methodologies.
ArticleNumber 11
Author Barrat, Alain
Génois, Mathieu
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Issue 1
Keywords Face-to-face contacts
Digital epidemiology
Co-presence
Complex networks
face-to-face contacts
complex networks
co-presence
digital epidemiology
Language English
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SSID ssj0001325366
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Snippet Technological advances have led to a strong increase in the number of data collection efforts aimed at measuring co-presence of individuals at different...
Abstract Technological advances have led to a strong increase in the number of data collection efforts aimed at measuring co-presence of individuals at...
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StartPage 11
SubjectTerms Co-presence
Complex networks
Complexity
Computer Appl. in Social and Behavioral Sciences
Computer Science
Condensed Matter
Data collection
Data-driven Science
Digital epidemiology
Epidemics
Face-to-face contacts
Interaktion
Modeling and Theory Building
Networks
Physics
Regular Article
Sampling
Sampling methods
Statistical Mechanics
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Title Can co-location be used as a proxy for face-to-face contacts?
URI https://link.springer.com/article/10.1140/epjds/s13688-018-0140-1
https://www.proquest.com/docview/3059122163
https://hal.science/hal-01788667
https://www.ssoar.info/ssoar/handle/document/69666
https://doaj.org/article/1e61581b0fc7422b85c939f5f6687f8c
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