Prescriptive analytics decision-making system for cardiovascular disease prediction in long COVID patients using

Diana Juliet S1, Banumathi J2

  • 1Department of Computer Science and Engineering, C.S.I. Institute of Technology, Thovalai, Tamilnadu, India.

Insights

A new AI system predicts cardiovascular disease (CVD) in long COVID patients with 97.88% accuracy. This decision-making tool aids early detection and personalized interventions for post-COVID recovery.

Area of Science:

  • Medical Informatics
  • Artificial Intelligence
  • Cardiology

Background:

  • COVID-19 can cause widespread inflammation, increasing risks for individuals with chronic conditions like cardiovascular disease (CVD).
  • Early detection of CVD is crucial for timely interventions and preventing serious complications, yet remains challenging, especially in long COVID patients.
  • Limited data exists on COVID-19's specific impact on CVD in patients experiencing prolonged symptoms.

Purpose of the Study:

  • To introduce a novel Decision-Making System for CVD Prediction tailored for long COVID patients.
  • To leverage an improved dual-attention residual bi-directional gated recurrent neural network unit (DA-ResBiGRU) algorithm with AI-Biruni Earth Radius Optimization (ABER) for enhanced risk assessment.
  • To provide healthcare providers with a tool for timely and targeted interventions by accurately assessing individual patient risk profiles.

Main Methods:

  • Development of a novel Decision-Making System for CVD Prediction using the DA-ResBiGRU algorithm and ABER.
  • Real-time monitoring and analysis of intricate patterns in patient data to assess individual risk profiles.
  • Continuous learning from new patient data to ensure up-to-date and adaptive predictions.

Main Results:

  • The proposed DA-ResBiGRU with ABER algorithm achieved superior performance compared to existing methods (DNN, LSTM, Inception-v3, Xception, MobileNetV2).
  • The system demonstrated high accuracy (97.88%), sensitivity (95.50%), specificity (94.29%), precision (96.68%), and F-measure (95.85%).
  • Simulation findings indicate the algorithm's potential for integration into clinical decision-making to effectively identify high-risk patients.

Conclusions:

  • The developed AI system offers a promising approach for personalized CVD risk assessment in long COVID patients.
  • The system can significantly assist healthcare professionals in identifying at-risk individuals, enabling proactive management of cardiovascular complications.
  • This research addresses a critical gap in monitoring and managing cardiovascular risks associated with long COVID.

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