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Sökning: WFRF:(Pilipiec Patrick)

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1.
  • Pilipiec, Patrick, et al. (författare)
  • Surveillance of communicable diseases using social media: A systematic review
  • 2023
  • Ingår i: PLOS ONE. - : Public Library of Science. - 1932-6203. ; 18:2
  • Forskningsöversikt (refereegranskat)abstract
    • BackgroundCommunicable diseases pose a severe threat to public health and economic growth. The traditional methods that are used for public health surveillance, however, involve many drawbacks, such as being labor intensive to operate and resulting in a lag between data collection and reporting. To effectively address the limitations of these traditional methods and to mitigate the adverse effects of these diseases, a proactive and real-time public health surveillance system is needed. Previous studies have indicated the usefulness of performing text mining on social media.ObjectiveTo conduct a systematic review of the literature that used textual content published to social media for the purpose of the surveillance and prediction of communicable diseases.MethodologyBroad search queries were formulated and performed in four databases. Both journal articles and conference materials were included. The quality of the studies, operationalized as reliability and validity, was assessed. This qualitative systematic review was guided by the Preferred Reporting Items for Systematic Reviews and Meta-Analyses (PRISMA) guidelines.ResultsTwenty-three publications were included in this systematic review. All studies reported positive results for using textual social media content to surveille communicable diseases. Most studies used Twitter as a source for these data. Influenza was studied most frequently, while other communicable diseases received far less attention. Journal articles had a higher quality (reliability and validity) than conference papers. However, studies often failed to provide important information about procedures and implementation.ConclusionText mining of health-related content published on social media can serve as a novel and powerful tool for the automated, real-time, and remote monitoring of public health and for the surveillance and prediction of communicable diseases in particular. This tool can address limitations related to traditional surveillance methods, and it has the potential to supplement traditional methods for public health surveillance.
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2.
  • Pilipiec, Patrick, et al. (författare)
  • Using Machine Learning for Pharmacovigilance: A Systematic Review
  • 2022
  • Ingår i: Pharmaceutics. - : MDPI. - 1999-4923 .- 1999-4923. ; 14:2
  • Forskningsöversikt (refereegranskat)abstract
    • Pharmacovigilance is a science that involves the ongoing monitoring of adverse drug reactions to existing medicines. Traditional approaches in this field can be expensive and time-consuming. The application of natural language processing (NLP) to analyze user-generated content is hypothesized as an effective supplemental source of evidence. In this systematic review, a broad and multi-disciplinary literature search was conducted involving four databases. A total of 5318 publications were initially found. Studies were considered relevant if they reported on the application of NLP to understand user-generated text for pharmacovigilance. A total of 16 relevant publications were included in this systematic review. All studies were evaluated to have medium reliability and validity. For all types of drugs, 14 publications reported positive findings with respect to the identification of adverse drug reactions, providing consistent evidence that natural language processing can be used effectively and accurately on user-generated textual content that was published to the Internet to identify adverse drug reactions for the purpose of pharmacovigilance. The evidence presented in this review suggest that the analysis of textual data has the potential to complement the traditional system of pharmacovigilance.
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Bota, András (2)
Pilipiec, Patrick (2)
Liwicki, Marcus (1)
Samsten, Isak, 1987- (1)
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