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1. Minimum Information about a Cardiac Electrophysiology Experiment (MICEE): Standardised reporting for model reproducibility, interoperability, and data sharing

2. State-of-the-Art Review: Cardiac Optogenetics, 2018

3. Microdomain-Specific Modulation of L-type Calcium Channels Leads to Triggered Ventricular Arrhythmia in Heart Failure

6. Mechanisms of human atrial fibrillation initiation: clinical and computational studies of repolarization restitution and activation latency.

7. Unstable QT interval dynamics precedes ventricular tachycardia onset in patients with acute myocardial infarction: a novel approach to detect instability in QT interval dynamics from clinical ECG.

9. Mechanisms for initiation of reentry in acute regional ischemia phase 1B.

11. Virtual electrode polarization leads to reentry in the far field.

12. Transmyocardial therapeutic-delivery using real-time MRI guidance

14. Defining myocardial fiber bundle architecture in atrial digital twins.

15. Elastic shape analysis for unsupervised clustering of left atrial appendage morphologies in atrial fibrillation patients.

16. Cardiac MRI Oversampling in Heart Digital Twins Improves Preprocedure Ventricular Tachycardia Identification in Postinfarction Patients.

17. Evaluation of a deep learning-enabled automated computational heart modelling workflow for personalized assessment of ventricular arrhythmias.

18. Optimizing the Distribution of Ablation Lesions to Prevent Postablation Atrial Tachycardia: A Personalized Digital-Twin Study.

19. Assessing the arrhythmogenic propensity of fibrotic substrate using digital twins to inform a mechanisms-based atrial fibrillation ablation strategy.

20. Computational modeling of cardiac electrophysiology and arrhythmogenesis: toward clinical translation.

21. A comprehensive stroke risk assessment by combining atrial computational fluid dynamics simulations and functional patient data.

22. Slow blood-flow in the left atrial appendage is associated with stroke in atrial fibrillation patients.

23. Up digital and personal: How heart digital twins can transform heart patient care.

24. Predicting ventricular tachycardia circuits in patients with arrhythmogenic right ventricular cardiomyopathy using genotype-specific heart digital twins.

26. Caveolin-3 and Caveolae regulate ventricular repolarization.

27. Wavefront directionality and decremental stimuli synergistically improve identification of ventricular tachycardia substrate: insights from personalized computational heart models.

28. LASSNet: A Four Steps Deep Neural Network for Left Atrial Segmentation and Scar Quantification.

29. Machine learning guided structure function predictions enable in silico nanoparticle screening for polymeric gene delivery.

30. Advances in Cardiac Electrophysiology.

31. Atrial fibrillation: Insights from animal models, computational modeling, and clinical studies.

32. Fat infiltration in the infarcted heart as a paradigm for ventricular arrhythmias.

33. Arrhythmia in hypertrophic cardiomyopathy: Risk prediction using contrast enhanced MRI, T1 mapping, and personalized virtual heart technology.

34. Real-Time Prediction of Mortality, Cardiac Arrest, and Thromboembolic Complications in Hospitalized Patients With COVID-19.

37. Association of left ventricular tissue heterogeneity and intramyocardial fat on computed tomography with ventricular arrhythmias in ischemic cardiomyopathy.

38. Arrhythmic sudden death survival prediction using deep learning analysis of scarring in the heart.

39. Assessment of arrhythmia mechanism and burden of the infarcted ventricles following remuscularization with pluripotent stem cell-derived cardiomyocyte patches using patient-derived models.

40. Improving risk prediction for pulmonary embolism in COVID-19 patients using echocardiography.

41. Personalized computational heart models with T1-mapped fibrotic remodeling predict sudden death risk in patients with hypertrophic cardiomyopathy.

42. Mechanisms of Sinoatrial Node Dysfunction in Heart Failure With Preserved Ejection Fraction.

43. Computational modeling of aberrant electrical activity following remuscularization with intramyocardially injected pluripotent stem cell-derived cardiomyocytes.

44. Optimal ECG-lead selection increases generalizability of deep learning on ECG abnormality classification.

45. Anatomically informed deep learning on contrast-enhanced cardiac magnetic resonance imaging for scar segmentation and clinical feature extraction.

46. Fast Posterior Estimation of Cardiac Electrophysiological Model Parameters via Bayesian Active Learning.

47. Assessment of an ECG-Based System for Localizing Ventricular Arrhythmias in Patients With Structural Heart Disease.

48. Artificial intelligence in the diagnosis and management of arrhythmias.

49. Analyzing the Role of Repolarization Gradients in Post-infarct Ventricular Tachycardia Dynamics Using Patient-Specific Computational Heart Models.

50. Whole-heart ventricular arrhythmia modeling moving forward: Mechanistic insights and translational applications.

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