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1. Federated Learning of Electronic Health Records to Improve Mortality Prediction in Hospitalized Patients With COVID-19: Machine Learning Approach

2. Machine Learning to Predict Mortality and Critical Events in a Cohort of Patients With COVID-19 in New York City: Model Development and Validation

3. PatientExploreR: an extensible application for dynamic visualization of patient clinical history from electronic health records in the OMOP common data model

4. Using Deep-Learning Algorithms to Simultaneously Identify Right and Left Ventricular Dysfunction From the Electrocardiogram

8. Heterogeneous Graph Embeddings of Electronic Health Records Improve Critical Care Disease Predictions

13. Prediction of mortality from 12-lead electrocardiogram voltage data using a deep neural network

18. Contributors

21. Heterogeneous Graph Embeddings of Electronic Health Records Improve Critical Care Disease Predictions

23. Abstract 13102: Prediction of Incident AF With Deep Learning Can Identify Patients at High Risk for AF-related Stroke

26. Correction to: Integrative analysis of loss-of-function variants in clinical and genomic data reveals novel genes associated with cardiovascular traits

27. Integrative analysis of loss-of-function variants in clinical and genomic data reveals novel genes associated with cardiovascular traits

28. Generation of a Compendium of Transcription Factor Cascades and Identification of Potential Therapeutic Targets using Graph Machine Learning

29. Pharmacological risk factors associated with hospital readmission rates in a psychiatric cohort identified using prescriptome data mining

31. Artificial Intelligence and Cardiovascular Genetics

37. Using deep learning algorithms to simultaneously identify right and left ventricular dysfunction from the electrocardiogram

38. Deep Neural Networks Can Predict New-Onset Atrial Fibrillation From the 12-Lead ECG and Help Identify Those at Risk of Atrial Fibrillation–Related Stroke

40. Association of SARS-CoV-2 viral load at admission with in-hospital acute kidney injury: A retrospective cohort study

42. Retrospective cohort study of clinical characteristics of 2199 hospitalised patients with COVID-19 in New York City

45. Molecular Imaging of Apoptosis in Atherosclerosis by Targeting Cell Membrane Phospholipid Asymmetry

46. Federated Learning of Electronic Health Records to Improve Mortality Prediction in Hospitalized Patients With COVID-19: Machine Learning Approach (Preprint)

47. Machine Learning to Predict Mortality and Critical Events in a Cohort of Patients With COVID-19 in New York City: Model Development and Validation (Preprint)

48. Federated Learning of Electronic Health Records Improves Mortality Prediction in Patients Hospitalized with COVID-19

49. Prevalence and Impact of Myocardial Injury in Patients Hospitalized With COVID-19 Infection

50. Machine Learning in Cardiology—Ensuring Clinical Impact Lives Up to the Hype

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