Cerebral blood flow (CBF) can be measured with dynamic positron emission tomography (PET) of 15O-labeled water by using tracer kinetic modelling. However, for quantification of regional CBF, an arterial input function (AIF), obtained from arterial blood sampling, is required. In this work we evaluated a novel, non-invasive approach for input function prediction based on machine learning (MLIF), against AIF for CBF PET measurements in human subjects. Twenty-five subjects underwent two 10 min dynamic 15O-water brain PET scans with continuous arterial blood sampling, before (baseline) and following acetazolamide medication. Three different image-derived time-activity curves were automatically segmented from the carotid arteries and used as inp...
Accurate quantification of cerebral blood flow (CBF) is essential for the diagnosis and assessment o...
For the absolute quantification of regional cerebral blood flow (rCBF) by means of H2 15 O positron ...
Background Obtaining the arterial input function (AIF) from image data in dynamic positron emission...
Cerebral blood flow (CBF) can be measured with dynamic positron emission tomography (PET) of 15O-lab...
Quantification of regional cerebral blood flow (CBF) using [15O]H2O positron emission tomography (PE...
Background: Quantitative positron emission tomography (PET) scans of the brain typically require art...
To improve the quality of MRI-based cerebral blood flow (CBF) measurements, a deep convolutional neu...
peer reviewedQuantitative positron emission tomography (PET) brain studies often require an input fu...
Kinetic analysis of (18)F-fluorodeoxyglucose positron emission tomography data requires an accurate ...
Quantification of regional cerebral blood flow (CBF) using [O-15]H2O positron emission tomography (P...
Background Cerebrovascular reserve (CVR) may be measured by using an acetazolamide test to clinicall...
The quantitative determination of regional cerebral blood flow (rCBF) is important in certain clinic...
Although PET with 15O-water is the gold standard for imaging cerebral blood flow (CBF), quantificati...
BackgroundH2 15 O-positron emission tomography (PET) is considered the reference standard for absolu...
Measurement of cerebral blood flow (CBF) using positron emission tomography (PET) with 15O-labelled ...
Accurate quantification of cerebral blood flow (CBF) is essential for the diagnosis and assessment o...
For the absolute quantification of regional cerebral blood flow (rCBF) by means of H2 15 O positron ...
Background Obtaining the arterial input function (AIF) from image data in dynamic positron emission...
Cerebral blood flow (CBF) can be measured with dynamic positron emission tomography (PET) of 15O-lab...
Quantification of regional cerebral blood flow (CBF) using [15O]H2O positron emission tomography (PE...
Background: Quantitative positron emission tomography (PET) scans of the brain typically require art...
To improve the quality of MRI-based cerebral blood flow (CBF) measurements, a deep convolutional neu...
peer reviewedQuantitative positron emission tomography (PET) brain studies often require an input fu...
Kinetic analysis of (18)F-fluorodeoxyglucose positron emission tomography data requires an accurate ...
Quantification of regional cerebral blood flow (CBF) using [O-15]H2O positron emission tomography (P...
Background Cerebrovascular reserve (CVR) may be measured by using an acetazolamide test to clinicall...
The quantitative determination of regional cerebral blood flow (rCBF) is important in certain clinic...
Although PET with 15O-water is the gold standard for imaging cerebral blood flow (CBF), quantificati...
BackgroundH2 15 O-positron emission tomography (PET) is considered the reference standard for absolu...
Measurement of cerebral blood flow (CBF) using positron emission tomography (PET) with 15O-labelled ...
Accurate quantification of cerebral blood flow (CBF) is essential for the diagnosis and assessment o...
For the absolute quantification of regional cerebral blood flow (rCBF) by means of H2 15 O positron ...
Background Obtaining the arterial input function (AIF) from image data in dynamic positron emission...