Data Management for Health Data Reuse: Proposal of a Standard Workflow and a R Tutorial with Jupyter Notebook

Author:

Lamer Antoine123,Al Massati Sanae23,Saint-Dizier Chloé12,Fares Emile1,Chazard Emmanuel3,Fruchart Mathilde3

Affiliation:

1. F2RSM Psy – Fédération régionale de recherche en psychiatrie et santé mentale Hauts-de-France, F-59350, Saint-André-Lez-Lille, France

2. Univ. Lille, Faculté Ingénierie et Management de la Santé, F-59000, Lille, France

3. Univ. Lille, CHU Lille, ULR 2694 – METRICS: Évaluation des Technologies de santé et des Pratiques médicales, F-59000 Lille, France

Abstract

The data collected in the clinical registries or by data reuse require some modifications in order to suit the research needs. Several common operations are frequently applied to select relevant patients across the cohort, combine data from multiple sources, add new variables if needed and create unique tables depending on the research purpose. We carried out a qualitative survey by conducting semi-structured interviews with 7 experts in data reuse and proposed a standard workflow for health data management. We implemented a R tutorial based on a synthetic data set using Jupyter Notebook for a better understanding of the data management workflow.

Publisher

IOS Press

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