Deep Learning Analysis of Polish Electronic Health Records for Diagnosis Prediction in Patients with Cardiovascular Diseases.

Polish language deep learning diagnosis prediction electronic health records text analysis

Journal

Journal of personalized medicine
ISSN: 2075-4426
Titre abrégé: J Pers Med
Pays: Switzerland
ID NLM: 101602269

Informations de publication

Date de publication:
25 May 2022
Historique:
received: 17 04 2022
revised: 12 05 2022
accepted: 23 05 2022
entrez: 24 6 2022
pubmed: 25 6 2022
medline: 25 6 2022
Statut: epublish

Résumé

Electronic health records naturally contain most of the medical information in the form of doctor's notes as unstructured or semi-structured texts. Current deep learning text analysis approaches allow researchers to reveal the inner semantics of text information and even identify hidden consequences that can offer extra decision support to doctors. In the presented article, we offer a new automated analysis of Polish summary texts of patient hospitalizations. The presented models were found to be able to predict the final diagnosis with almost 70% accuracy based just on the patient's medical history (only 132 words on average), with possible accuracy increases when adding further sentences from hospitalization results; even one sentence was found to improve the results by 4%, and the best accuracy of 78% was achieved with five extra sentences. In addition to detailed descriptions of the data and methodology, we present an evaluation of the analysis using more than 50,000 Polish cardiology patient texts and dive into a detailed error analysis of the approach. The results indicate that the deep analysis of just the medical history summary can suggest the direction of diagnosis with a high probability that can be further increased just by supplementing the records with further examination results.

Identifiants

pubmed: 35743653
pii: jpm12060869
doi: 10.3390/jpm12060869
pmc: PMC9225281
pii:
doi:

Types de publication

Journal Article

Langues

eng

Subventions

Organisme : Ministry of Education of CR within the LINDAT-CLARIAH-CZ project
ID : LM2018101
Organisme : Grant Agency of Masaryk University
ID : project MUNI/IGA/1326/2021
Organisme : Medical University of Silesia in Poland
ID : PCN-1-005/N/0/K and PCN-1-073/N/1/K
Organisme : Mieczysław Koćwin Foundation Scholarship

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Auteurs

Kristof Anetta (K)

Natural Language Processing Centre, Faculty of Informatics, Masaryk University, 602 00 Brno, Czech Republic.

Ales Horak (A)

Natural Language Processing Centre, Faculty of Informatics, Masaryk University, 602 00 Brno, Czech Republic.

Wojciech Wojakowski (W)

Department of Cardiology and Structural Heart Diseases, School of Medicine in Katowice, Medical University of Silesia, 40-055 Katowice, Poland.

Krystian Wita (K)

First Department of Cardiology, Medical University of Silesia, 40-055 Katowice, Poland.

Tomasz Jadczyk (T)

Department of Cardiology and Structural Heart Diseases, School of Medicine in Katowice, Medical University of Silesia, 40-055 Katowice, Poland.
Interventional Cardiac Electrophysiology Group, International Clinical Research Center, St. Anne's University Hospital Brno, 656 91 Brno, Czech Republic.

Classifications MeSH