Cardiovascular Diseases Clinical Trial
— MLQSEOfficial title:
Machine Learning in Quantitative Stress Echocardiography
NCT number | NCT04193475 |
Other study ID # | R2458 |
Secondary ID | |
Status | Recruiting |
Phase | |
First received | |
Last updated | |
Start date | November 22, 2019 |
Est. completion date | August 30, 2023 |
Greater diagnostic accuracy is required to find out who is at risk of a heart attack as this can reduce the requirement of more invasive downstream tests and thereby improve the patient experience and also reduce their exposure to risk. Stress echocardiography is a routine clinical test that involves using ultrasound to image the heart whilst it is under stress to assess the risk of a heart attack. This study will focus on developing more accurate analysis tools to interpret the results of these stress echocardiographic scans. New methods will be tested to measure the function of each part of the heart muscle, using advanced analysis of the information obtained when high-frequency sound waves are bounced off the heart inside the chest. The researchers will measure and report exact heart function during stress, so that they will be able to recognise normal hearts and those with any disease. New computer methods will be developed to display any abnormality, which will make it easier for doctors to choose the best treatment for patients who are at risk. The goals and potential benefits of this research proposal are to update the interpretation of a routinely used clinical test (stress echocardiography) to produce a reliable new method for diagnosing the precise effects of diseased arteries on the function of the heart muscle; to develop new computer graphics that adapt to show individual risks for each patient; and to implement new computer models that can be constantly updated
Status | Recruiting |
Enrollment | 1250 |
Est. completion date | August 30, 2023 |
Est. primary completion date | August 13, 2023 |
Accepts healthy volunteers | |
Gender | All |
Age group | 20 Years to 89 Years |
Eligibility | Inclusion Criteria: - Clinically suitable for stress echocardiography examination Exclusion Criteria: - None |
Country | Name | City | State |
---|---|---|---|
United Kingdom | Castle Hill Hospital | Cottingham |
Lead Sponsor | Collaborator |
---|---|
Hull University Teaching Hospitals NHS Trust | Barts & The London NHS Trust, Cardiff and Vale University Health Board |
United Kingdom,
Type | Measure | Description | Time frame | Safety issue |
---|---|---|---|---|
Primary | Inducible myocardial ischaemia | Diagnostic performance of the machine learning classifier for the detection of inducible myocardial ischaemia as determined by reduced coronary flow reserve | 3 years | |
Secondary | Workload | Diagnostic performance of workload (units = watts) for the detection of inducible myocardial ischaemia as determined by reduced coronary flow reserve. | 3 years | |
Secondary | Velocity | Diagnostic performance of velocity (units = m/s) for the detection of myocardial functional reserve compared with quantitative coronary arteriography and with coronary flow reserve. | 3 years | |
Secondary | Strain rate | Diagnostic performance of strain rate (units = s^-1) for the detection of myocardial functional reserve compared with quantitative coronary arteriography and with coronary flow reserve. | 3 years | |
Secondary | Strain | Diagnostic performance of strain (units = s) for the detection of myocardial functional reserve compared with quantitative coronary arteriography and with coronary flow reserve. | 3 years |
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