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Epidemiological Algorithm for Early Detection of COVID-19 Cases in a Mexican Oncologic Center.


ABSTRACT: An early detection tool for latent COVID-19 infections in oncology staff and patients is essential to prevent outbreaks in a cancer center. (1) Background: In this study, we developed and implemented two early detection tools for the radiotherapy area to identify COVID-19 cases opportunely. (2) Methods: Staff and patients answered a questionnaire (electronic and paper surveys, respectively) with clinical and epidemiological information. The data were collected through two online survey tools: Real-Time Tracking (R-Track) and Summary of Factors (S-Facts). Cut-off values were established according to the algorithm models. SARS-CoV-2 qRT-PCR tests confirmed the positive algorithms individuals. (3) Results: Oncology staff members (n = 142) were tested, and 14% (n = 20) were positives for the R

SUBMITTER: Gonzalez-Escamilla M 

PROVIDER: S-EPMC8950794 | biostudies-literature | 2022 Mar

REPOSITORIES: biostudies-literature

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