Non-Invasive Systems and Methods Patents Review Based on Electrocardiogram for Diagnosis of Cardiovascular Diseases
Abstract
:1. Introduction
2. Materials and Methods
2.1. Keywords
2.2. Inclusion and Exclusion Criteria
2.3. Classification
3. Results
3.1. Machine and Process for the Automatic Localization of Sources of Biological Rhythm Disorders
3.2. Method and System for Cardiovascular System Diagnosis
3.3. Method and Software for Cardiovascular Assessment and Risk Detection
3.4. System and Method for Separating Cardiac Signals
3.5. System and Method for Mapping Complex Fractionated Electrocardiogram Information
3.6. ECG Data Monitor
3.7. System for Managing Cardiovascular Health Status
3.8. Electrocardiographic Assessment of Arrhythmia Risk
3.9. Programmable-ECG Sensor Patch
3.10. Cardiac Performance Monitoring System for Use with Mobile Communication Devices
3.11. Method and Device for Early Detection of Heart Attack
3.12. System, Computer-Implemented Method and Computer Program Product for Individualized Multiple-Disease Quantitative Risk Assessment
3.13. Method and Device for Assessing the Risk of Cardiovascular Complications
3.14. QRS Complex Identification in Electrocardiogram Signals
3.15. Method and Device to Predict Adverse Cardiovascular Events and Mortality from an Electrocardiogram-Based Validated Risk Score
3.16. Systems and Methods for Monitoring and Controlling a Cardiovascular State of a Subject
3.17. System and Methods for Cardiovascular Blood Flow and Musculoskeletal Modeling for Predicting Device Failure or Clinical Events
3.18. Automatic Method to Delineate or Categorize an Electrocardiogram
3.19. Printed ECG Electrode and Method
3.20. Analysis of Electrocardiogram Signals
3.21. Cardiovascular Assist System That Quantifies Heart Function and Facilitates Heart Recovery
3.22. Monitor Recorder-Implemented Method for Electrocardiography Value Encoding and Compression
3.23. System and Method for Assessing Clinical Event Risk Based on Heart Rate Complexity
3.24. Continuous Detection and Monitoring of Heart Arrhythmia Using Both Wearable Sensors and Cloud-Resident Analyses
3.25. Electrocardiograph with Extended Lead Function and Extended Lead Electrocardiogram Deriving Method
3.26. ECG Analysis for Diagnosis of Heart Failure and Cardiovascular Disease Using Signals Obtained from an Implantable Monitor
3.27. Multi-Channel Real-Time Cardiovascular Performance Evaluation System and Method
3.28. Systems, Devices, and Methods for Non-Invasive Cardiac Monitoring
3.29. Systems and Methods for Predicting Atrial Arrhythmia
3.30. Compact Mobile Three-Lead Cardiac Monitoring Device
4. Discussion
5. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Flores, N.; Reyna, M.A.; Avitia, R.L.; Cardenas-Haro, J.A.; Garcia-Gonzalez, C. Non-Invasive Systems and Methods Patents Review Based on Electrocardiogram for Diagnosis of Cardiovascular Diseases. Algorithms 2022, 15, 82. https://doi.org/10.3390/a15030082
Flores N, Reyna MA, Avitia RL, Cardenas-Haro JA, Garcia-Gonzalez C. Non-Invasive Systems and Methods Patents Review Based on Electrocardiogram for Diagnosis of Cardiovascular Diseases. Algorithms. 2022; 15(3):82. https://doi.org/10.3390/a15030082
Chicago/Turabian StyleFlores, Nellyzeth, Marco A. Reyna, Roberto L. Avitia, Jose Antonio Cardenas-Haro, and Conrado Garcia-Gonzalez. 2022. "Non-Invasive Systems and Methods Patents Review Based on Electrocardiogram for Diagnosis of Cardiovascular Diseases" Algorithms 15, no. 3: 82. https://doi.org/10.3390/a15030082
APA StyleFlores, N., Reyna, M. A., Avitia, R. L., Cardenas-Haro, J. A., & Garcia-Gonzalez, C. (2022). Non-Invasive Systems and Methods Patents Review Based on Electrocardiogram for Diagnosis of Cardiovascular Diseases. Algorithms, 15(3), 82. https://doi.org/10.3390/a15030082