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1. LDDNet: A Deep Learning Framework for the Diagnosis of Infectious Lung Diseases.

2. Diagnosis of COVID-19 Disease in Chest CT-Scan Images Based on Combination of Low-Level Texture Analysis and MobileNetV2 Features.

3. Bag of Tricks for Improving Deep Learning Performance on Multimodal Image Classification.

4. Classifier Fusion for Detection of COVID-19 from CT Scans.

5. Cohesive Multi-Modality Feature Learning and Fusion for COVID-19 Patient Severity Prediction.

6. Segmentation of infected region in CT images of COVID-19 patients based on QC-HC U-net.

7. CO-IRv2: Optimized InceptionResNetV2 for COVID-19 detection from chest CT images.

8. Quantum algorithm for quicker clinical prognostic analysis: an application and experimental study using CT scan images of COVID-19 patients.

9. Twinned Residual Auto-Encoder (TRAE)—A new DL architecture for denoising super-resolution and task-aware feature learning from COVID-19 CT images.

10. On the Adoption of Radiomics and Formal Methods for COVID-19 Coronavirus Diagnosis.