A novel machine learning methodology for the systematic extraction of chronic kidney disease comorbidities from

Eszter Sághy1, Mostafa Elsharkawy2, Frank Moriarty3

  • 1Faculty of Pharmacy, University of Pécs, Pécs, Hungary.

Frontiers in Digital Health
|February 21, 2025
PubMed

Insights

This study developed a machine learning workflow to identify diseases that impact Chronic Kidney Disease (CKD) development and progression, uncovering 68 comorbidities. This aids in better patient monitoring and early detection for those at risk.

Area of Science:

  • Medical Informatics
  • Machine Learning in Healthcare
  • Nephrology

Background:

  • Chronic Kidney Disease (CKD) is a growing global health issue, often underdiagnosed due to subtle early symptoms, leading to increased morbidity and mortality.
  • Understanding CKD comorbidities is crucial for identifying at-risk populations, optimizing treatments, and improving patient outcomes.

Purpose of the Study:

  • To develop an effective machine learning (ML) workflow for text classification and entity relation extraction.
  • To compile a comprehensive list of diseases that influence the development and progression of CKD.

Main Methods:

  • Analysis of 39,680 abstracts related to CKD from the Embase library.
  • Utilized multiple ML classifiers trained on human-labeled data, with the best performing model (SVM) further optimized using active learning.
  • Employed a novel entity relation extraction methodology to identify and list relevant diseases from selected abstracts.

Main Results:

  • An optimized ML workflow successfully identified 68 comorbidities across 15 ICD-10 disease groups contributing to CKD.
  • The study distinguished between diseases with direct and indirect causal effects on CKD, citing schizophrenia as an example of indirect influence.

Conclusions:

  • The findings provide a foundation for future CKD research by enabling the integration of a wider range of comorbidities into prognostic models.
  • This work supports clinical practice through enhanced patient monitoring, preventive strategies, and early detection for individuals susceptible to CKD development or progression.
Abstract

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