A Process Mining Pipeline to Characterize COVID-19 Patients' Trajectories and Identify Relevant Temporal Phenotypes From EHR Data.

COVID-19 Electronic Health Record (EHR) digital health electronic phenotyping algorithms healthcare dynamics precision medicine process mining temporal phenotypes

Journal

Frontiers in public health
ISSN: 2296-2565
Titre abrégé: Front Public Health
Pays: Switzerland
ID NLM: 101616579

Informations de publication

Date de publication:
2022
Historique:
received: 15 11 2021
accepted: 21 04 2022
entrez: 9 6 2022
pubmed: 10 6 2022
medline: 11 6 2022
Statut: epublish

Résumé

The impact of the COVID-19 pandemic involved the disruption of the processes of care and the need for immediately effective re-organizational procedures. In the context of digital health, it is of paramount importance to determine how a specific patients' population reflects into the healthcare dynamics of the hospital, to investigate how patients' sub-group/strata respond to the different care processes, in order to generate novel hypotheses regarding the most effective healthcare strategies. We present an analysis pipeline based on the heterogeneous collected data aimed at identifying the most frequent healthcare processes patterns, jointly analyzing them with demographic and physiological disease trajectories, and stratify the observed cohort on the basis of the mined patterns. This is a process-oriented pipeline which integrates process mining algorithms, and trajectory mining by topological data analyses and pseudo time approaches. Data was collected for 1,179 COVID-19 positive patients, hospitalized at the Italian Hospital "Istituti Clinici Salvatore Maugeri" in Lombardy, integrating different sources including text admission letters, EHR and hospital infrastructure data. We identified five temporal phenotypes, from laboratory values trajectories, which are characterized by statistically significant different death risk estimates. The process mining algorithms allowed splitting the data in sub-cohorts as function of the pandemic waves and of the temporal trajectories showing statistically significant differences in terms of events characteristics.

Identifiants

pubmed: 35677768
doi: 10.3389/fpubh.2022.815674
pmc: PMC9168006
doi:

Types de publication

Journal Article

Langues

eng

Sous-ensembles de citation

IM

Pagination

815674

Informations de copyright

Copyright © 2022 Dagliati, Gatta, Malovini, Tibollo, Sacchi, Cascini, Chiovato and Bellazzi.

Déclaration de conflit d'intérêts

The authors declare that the research was conducted in the absence of any commercial or financial relationships that could be construed as a potential conflict of interest.

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Auteurs

Arianna Dagliati (A)

Department of Electrical, Computer and Biomedical Engineering, University of Pavia, Pavia, Italy.

Roberto Gatta (R)

Dipartimento di Scienze Cliniche e Sperimentali dell'Università degli Studi di Brescia, Brescia, Italy.
Department of Oncology, Lausanne University Hospital, Lausanne, Switzerland.

Alberto Malovini (A)

Istituto di Ricovero e Cura a Carattere Scientifico (IRCCS) Istituti Clinici Scientifici Maugeri, Pavia, Italy.

Valentina Tibollo (V)

Istituto di Ricovero e Cura a Carattere Scientifico (IRCCS) Istituti Clinici Scientifici Maugeri, Pavia, Italy.

Lucia Sacchi (L)

Department of Electrical, Computer and Biomedical Engineering, University of Pavia, Pavia, Italy.

Fidelia Cascini (F)

Dipartimento di Scienze della Vita e Sanità Pubblica, Università Cattolica del Sacro Cuore, Roma, Italy.

Luca Chiovato (L)

Department of Electrical, Computer and Biomedical Engineering, University of Pavia, Pavia, Italy.
Istituto di Ricovero e Cura a Carattere Scientifico (IRCCS) Istituti Clinici Scientifici Maugeri, Pavia, Italy.

Riccardo Bellazzi (R)

Department of Electrical, Computer and Biomedical Engineering, University of Pavia, Pavia, Italy.
Istituto di Ricovero e Cura a Carattere Scientifico (IRCCS) Istituti Clinici Scientifici Maugeri, Pavia, Italy.

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