Methods and systems for adaptive scan control
US-2017209113-A1 · Jul 27, 2017 · US
US10475216B2 · US · B2
| Field | Value |
|---|---|
| Publication number | US-10475216-B2 |
| Application number | US-201815905351-A |
| Country | US |
| Kind code | B2 |
| Filing date | Feb 26, 2018 |
| Priority date | Feb 26, 2018 |
| Publication date | Nov 12, 2019 |
| Grant date | Nov 12, 2019 |
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An imaging system determines a heart rate of a patient, a cardiac disease state, and/or a target cardiac anatomy of the patient. The system calculates an image acquisition time range from a patient population model using the heart rate, the cardiac disease state, and/or the target anatomy. The model represents relationships between cardiac motion of other patients and time or cardiac phases of the other patients. The system also determines imaging settings to acquire image data of the target anatomy during the image acquisition time range that is calculated. Imaging the target anatomy of the patient according to the imaging settings generates image data of the target anatomy having less cardiac motion and/or a reduced image acquisition time range relative to determining the imaging settings without using the patient population model.
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What is claimed is: 1. An imaging system comprising: one or more processors configured to determine one or more of a heart rate of a patient under examination, a cardiac disease state of the patient under examination, or an imaging target portion of cardiac anatomy of the patient under examination, the one or more processors also configured to calculate an image acquisition time range from a patient population model using the one or more of the heart rate, the cardiac disease state, or the imaging target portion of the cardiac anatomy, wherein the patient population model representing relationships between cardiac motion of plural other patients and one or more of time or cardiac phases of the other patients, wherein the one or more processors also are configured to determine imaging configuration settings for an imaging assembly to acquire image data of the target cardiac anatomy of the patient under examination during the image acquisition time range that is calculated using the patient population model, wherein imaging the target cardiac anatomy of the patient under examination using the imaging assembly operating according to the imaging configuration settings one or more of: generates image data of the target cardiac anatomy having less cardiac motion than determining the imaging configuration settings without using the patient population model or acquires the image data during an image acquisition time range that is reduced relative to determining the imaging configuration settings without using the patient population model, wherein the one or more processors are configured to generate and communicate a control signal that directs the imaging assembly to image the target cardiac anatomy of the patient under examination using the imaging configuration settings, the one or more processors also configured to receive imaging data from the imaging assembly, to reconstruct one or more images of the target cardiac anatomy using the imaging data, and to one or more of direct display of the one or more images on an electronic display device or direct storage of the one or more images in a tangible and non-transitory computer readable storage medium. 2. The system of claim 1 , wherein the one or more processors are configured to calculate one or more of an estimated motion quality of the target cardiac anatomy of the patient under examination or a predicted heart rate of the patient under examination from the patient population model and using the one or more of the heart rate, the cardiac disease state, or the imaging target portion of the cardiac anatomy, wherein the one or more processors are configured to determine the imaging configuration settings using the one or more of the estimated motion quality or the predicted heart rate. 3. The system of claim 1 , wherein the one or more processors are configured to calculate the image acquisition time range by determining a portion of an R-R wave interval during which imaging of the target cardiac anatomy is to occur, wherein the portion of the R-R wave interval is different for one or more of different heart rates of the patient under examination, different cardiac disease states of the patient under examination, or different imaging target portions of the cardiac anatomy of the patient under examination. 4. The system of claim 1 , wherein the one or more processors are configured to reconstruct the one or more images of the target cardiac anatomy for different phases of motion of the target cardiac anatomy, wherein the one or more processors also are configured to select at least one of the images of the target cardiac anatomy based on an amount of motion of the target cardiac anatomy during the phase of motion of the target cardiac anatomy that is associated with the at least one of the images that is selected, to compare the phase of motion of the target cardiac anatomy that is associated with the at least one of the images that is selected with the image acquisition time range that is calculated from the patient population model, and to update the patient population model based on a difference between the phase of motion of the target cardiac anatomy and the image acquisition time range that is calculated from the patient propulsion model. 5. The system of claim 1 , wherein the one or more processors are configured to calculate exposure confidence metrics using the patient population model, wherein the exposure confidence metrics represent of likelihoods that different image acquisition time ranges calculated using the patient population model result in the image data of the target cardiac anatomy being generated with less cardiac motion, wherein the one or more processors are configured to determine the imaging configuration settings based on the exposure confidence metrics. 6. The system of claim 5 , wherein the one or more processors are configured to calculate the exposure confidence metrics to be different for one or more of different cardiac disease states, different patient genders, different target cardiac anatomies, or different patient ages. 7. The system of claim 5 , wherein the one or more processors are configured to reduce at least one of the exposure confidence metrics responsive to one or more of the patient exhibiting presence of a cardiac disease or the patient being female. 8. A method comprising: determining one or more of a heart rate of a patient under examination, a cardiac disease state of the patient under examination, or an imaging target portion of cardiac anatomy of the patient under examination; calculating an image acquisition time range from a patient population model using the one or more of the heart rate, the cardiac disease state, or the imaging target portion of the cardiac anatomy, the patient population model representing relationships between cardiac motion of plural other patients and one or more of time or cardiac phases of the other patients; and determining imaging configuration settings for an imaging system to acquire image data of the target cardiac anatomy of the patient under examination during the image acquisition time range that is calculated using the patient population model, wherein imaging the target cardiac anatomy of the patient under examination using the imaging configuration settings for the imaging system one or more of: generates image data of the target cardiac anatomy having less cardiac motion relative to determining the imaging configuration settings without using the patient population model or acquires the image data during a reduced image acquisition time range relative to determining the imaging configuration settings without using the patient population model. 9. The method of claim 8 , further comprising: calculating one or more of an estimated motion quality of the target cardiac anatomy of the patient under examination or a predicted heart rate of the patient under examination from the patient population model and using the one or more of the heart rate, the cardiac disease state, or the imaging target portion of the cardiac anatomy, wherein the imaging configuration settings also are determined using the one or more of the estimated motion quality or the predicted heart rate. 10. The method of claim 8 , further comprising imaging the target cardiac anatomy of the patient under examination using the imaging configuration settings. 11. The method of claim 8 , wherein calculating the image acquisition time range includes determining a portion of an R-R wave interval during which imaging of the target cardiac anatomy is to occur, the portion of the R-R wave interval being different for one or more of different heart rates of the patient under examination, different
Dynamic · CPC title
Image preprocessing, e.g. calibration, positioning of sources or scatter correction · CPC title
for diagnosis of the heart · CPC title
involving temporal comparison · CPC title
due to motion · CPC title
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