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COVID-19 Diagnosis from CT Images with Convolutional Neural Network Optimized by Marine Predator Optimization
Huaping Jia1, Junlong Zhao2, Ali Arshaghi3
1College of Computer, Weinan Normal University, Weinan, Shaanxi, China.
Biomed Research International
|October 15, 2021
Summary
This study introduces an advanced AI method for diagnosing Coronavirus Disease 2019 (COVID-19) using CT scans. The novel approach significantly improves diagnostic accuracy and reliability for effective pandemic control.
Area of Science:
- Medical Imaging
- Artificial Intelligence
- Computational Biology
Background:
- The global spread of Coronavirus Disease 2019 (COVID-19) necessitates rapid and accurate diagnostic tools.
- Timely diagnosis and isolation of infected individuals are critical for controlling the pandemic.
- Current diagnostic methods face challenges in speed and accessibility.
Purpose of the Study:
- To develop and evaluate a novel hybrid deep learning model for automated COVID-19 diagnosis from CT images.
- To enhance diagnostic performance through optimization using a metaheuristic algorithm.
- To compare the proposed method against existing techniques for validation.
Main Methods:
- A hybrid convolutional neural network (CNN) architecture was employed for image analysis.
- The CNN model was optimized using the marine predator optimization algorithm (MPA).
- The method was trained and validated on the MosMedData dataset of chest CT scans.
Main Results:
- The proposed hybrid CNN-MPA model achieved high performance metrics.
- Achieved accuracy of 98.11%, precision of 98.13%, sensitivity of 98.66%, and F1 score of 97.26%.
- Outperformed three other comparative methods in all evaluated indicators.
Conclusions:
- The developed AI-based method demonstrates superior accuracy and reliability for COVID-19 diagnosis using CT scans.
- This approach offers a promising tool for rapid and effective screening of COVID-19 patients.
- The integration of metaheuristic optimization significantly enhances the diagnostic capabilities of deep learning models.
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