Information Management in Healthcare and Environment: Towards an Automatic System for Fake News Detection
Comments and information appearing on the internet and on different social media sway opinion concerning potential remedies for diagnosing and curing diseases. In many cases, this has an impact on citizens' health and affects medical professionals, who find themselves having to defend their dia...
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Published in: | International journal of environmental research and public health Vol. 17; no. 3; p. 1066 |
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Main Authors: | , , , |
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Language: | English |
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08-02-2020
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Abstract | Comments and information appearing on the internet and on different social media sway opinion concerning potential remedies for diagnosing and curing diseases. In many cases, this has an impact on citizens' health and affects medical professionals, who find themselves having to defend their diagnoses as well as the treatments they propose against ill-informed patients. The propagation of these opinions follows the same pattern as the dissemination of fake news about other important topics, such as the environment, via social media networks, which we use as a testing ground for checking our procedure. In this article, we present an algorithm to analyse the behaviour of users of Twitter, the most important social network with respect to this issue, as well as a dynamic knowledge graph construction method based on information gathered from Twitter and other open data sources such as web pages. To show our methodology, we present a concrete example of how the associated graph structure of the tweets related to World Environment Day 2019 is used to develop a heuristic analysis of the validity of the information. The proposed analytical scheme is based on the interaction between the computer tool-a database implemented with Neo4j-and the analyst, who must ask the right questions to the tool, allowing to follow the line of any doubtful data. We also show how this method can be used. We also present some methodological guidelines on how our system could allow, in the future, an automation of the procedures for the construction of an autonomous algorithm for the detection of false news on the internet related to health. |
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AbstractList | Comments and information appearing on the internet and on different social media sway opinion concerning potential remedies for diagnosing and curing diseases. In many cases, this has an impact on citizens’ health and affects medical professionals, who find themselves having to defend their diagnoses as well as the treatments they propose against ill-informed patients. The propagation of these opinions follows the same pattern as the dissemination of fake news about other important topics, such as the environment, via social media networks, which we use as a testing ground for checking our procedure. In this article, we present an algorithm to analyse the behaviour of users of Twitter, the most important social network with respect to this issue, as well as a dynamic knowledge graph construction method based on information gathered from Twitter and other open data sources such as web pages. To show our methodology, we present a concrete example of how the associated graph structure of the tweets related to World Environment Day 2019 is used to develop a heuristic analysis of the validity of the information. The proposed analytical scheme is based on the interaction between the computer tool—a database implemented with Neo4j—and the analyst, who must ask the right questions to the tool, allowing to follow the line of any doubtful data. We also show how this method can be used. We also present some methodological guidelines on how our system could allow, in the future, an automation of the procedures for the construction of an autonomous algorithm for the detection of false news on the internet related to health. |
Author | Ferrer-Sapena, Antonia Lara-Navarra, Pablo Sánchez-Pérez, Enrique A Falciani, Hervé |
AuthorAffiliation | 3 Instituto Universitario de Matemática Pura y Aplicada, Universitat Politècnica de València, 46022 València, Spain; easancpe@mat.upv.es 2 Tactical Whistleblower Association, 46022 València, Spain; herfal@upvnet.upv.es 1 Ciencias de la Información y de la Comunicación, Universitat Oberta de Catalunya, 08035 Barcelona, Spain; plara@uoc.edu |
AuthorAffiliation_xml | – name: 1 Ciencias de la Información y de la Comunicación, Universitat Oberta de Catalunya, 08035 Barcelona, Spain; plara@uoc.edu – name: 3 Instituto Universitario de Matemática Pura y Aplicada, Universitat Politècnica de València, 46022 València, Spain; easancpe@mat.upv.es – name: 2 Tactical Whistleblower Association, 46022 València, Spain; herfal@upvnet.upv.es |
Author_xml | – sequence: 1 givenname: Pablo orcidid: 0000-0003-0595-3161 surname: Lara-Navarra fullname: Lara-Navarra, Pablo organization: Ciencias de la Información y de la Comunicación, Universitat Oberta de Catalunya, 08035 Barcelona, Spain – sequence: 2 givenname: Hervé orcidid: 0000-0001-8733-1045 surname: Falciani fullname: Falciani, Hervé organization: Tactical Whistleblower Association, 46022 València, Spain – sequence: 3 givenname: Enrique A orcidid: 0000-0001-8854-3154 surname: Sánchez-Pérez fullname: Sánchez-Pérez, Enrique A organization: Instituto Universitario de Matemática Pura y Aplicada, Universitat Politècnica de València, 46022 València, Spain – sequence: 4 givenname: Antonia orcidid: 0000-0001-6432-917X surname: Ferrer-Sapena fullname: Ferrer-Sapena, Antonia organization: Instituto Universitario de Matemática Pura y Aplicada, Universitat Politècnica de València, 46022 València, Spain |
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Cites_doi | 10.11606/S1518-8787.2018052001199 10.1371/journal.pbio.2002020 10.1007/s10044-008-0141-y 10.1145/3309699 10.1016/j.dss.2010.08.006 10.1109/ICDMW.2007.91 10.1126/science.aao2998 10.1007/978-1-4419-6515-8_13 10.1111/j.1467-8640.2012.00425.x 10.1007/s10618-014-0365-y |
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Keywords | environment fake news graph healthcare reinforcement learning |
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