Patents by Inventor Craig H. Meyer

Craig H. Meyer has filed for patents to protect the following inventions. This listing includes patent applications that are pending as well as patents that have already been granted by the United States Patent and Trademark Office (USPTO).

  • Patent number: 9910118
    Abstract: Systems and methods for Cartesian dynamic imaging are disclosed. In one aspect, in accordance with one example embodiment, a method includes acquiring magnetic resonance data for an area of interest of a subject that is associated with one or more physiological activities of the subject and performing image reconstruction comprising Kalman filtering or smoothing on Cartesian images associated with the acquired magnetic resonance data. Performing the image reconstruction includes increasing at least one of spatial and temporal resolution of the Cartesian images.
    Type: Grant
    Filed: April 22, 2013
    Date of Patent: March 6, 2018
    Assignee: University of Virginia Patent Foundation
    Inventors: Xue Feng, Michael Salerno, Christopher M. Kramer, Craig H. Meyer
  • Patent number: 9874623
    Abstract: Systems and methods for magnetic resonance imaging (MRI) using side information for improved reconstruction are disclosed. In one aspect, in accordance with one example embodiment, images obtained using heteronuclei, such as Fluorine-19 (19F), can be reconstructed using one or more methods to provide improved resolution and detail. The system can use anatomical proton MRI scans. The system can use multiple smoothing techniques to improve the signal-to-noise ratio (SNR). The system can also use weighted smoothing using information from anatomical proton MRI scans to improve resolution.
    Type: Grant
    Filed: April 22, 2013
    Date of Patent: January 23, 2018
    Assignee: University of Virginia Patent Foundation
    Inventors: Samuel W. Fielden, Craig H. Meyer
  • Publication number: 20170328972
    Abstract: In one aspect, in accordance with one embodiment, a method includes acquiring magnetic resonance (MR) data corresponding to bone tissue in an area of interest of a subject that is heated from the application of localized energy. The acquiring includes applying a three-dimensional (3D) ultra-short echo time (UTE) spiral acquisition sequence. The method also includes detecting, from the acquired magnetic resonance data, a change in MR response signal due to a change in at least one of relaxation rate and magnetization density caused by heating of the bone tissue; and determining, based at least in part on the change in the MR response signal, that the temperature of the bone tissue has changed.
    Type: Application
    Filed: May 12, 2017
    Publication date: November 16, 2017
    Inventors: Samuel W. Fielden, John P. Mugler, III, G. Wilson Miller, IV, Kim Butts Pauly, Craig H. Meyer
  • Patent number: 9811924
    Abstract: A method and system for providing a fast image reconstruction of magnetic resonance spectroscopic imaging (MRSI) data based on applying, at least in part, interferometric techniques using a single receiver element. The images are reconstructed through temporally cross-correlating spacially incoherent k-space locations.
    Type: Grant
    Filed: April 19, 2012
    Date of Patent: November 7, 2017
    Assignee: University of Virginia Patent Foundation
    Inventors: Kenneth O. Johnson, Craig H. Meyer
  • Publication number: 20170307705
    Abstract: Some aspects of the present disclosure relate to ultrashort-echo-time (UTE) imaging. In one embodiment, a method includes acquiring UTE imaging data associated with an area of interest of a subject. The acquiring comprises applying an imaging pulse sequence with a three-dimensional (3D) spiral acquisition and a nonselective excitation pulse. The method also includes reconstructing at least one image of the area of interest from the acquired UTE imaging data.
    Type: Application
    Filed: April 21, 2017
    Publication date: October 26, 2017
    Inventors: John P. Mugler, III, Samuel W. Fielden, G. Wilson Miller, IV, Craig H. Meyer, Talissa A. Altes, Alto Stemmer, Josef Pfeuffer, Berthold Kiefer
  • Publication number: 20170202478
    Abstract: Some aspects of the present disclosure relate to identifying and profiling muscle patterns. In one embodiment, a method includes acquiring image data associated with a selected muscle or group of muscles of one or more subjects and determining, based on the image data, muscle volume of the selected muscle or group of muscles. The method also includes calculating, based on the muscle volume and the height and mass of the one or more subjects, a height-mass normalized muscle volume for the selected muscle or group of muscles, and determining a deviation of the height-mass normalized muscle volume of the selected muscle or group of muscles from a mean value of muscle volume associated with a corresponding reference muscle or reference group of muscles. The method also includes identifying, based on the deviation, a muscle abnormality or absence of a muscle abnormality in the selected muscle or group of muscles.
    Type: Application
    Filed: July 3, 2015
    Publication date: July 20, 2017
    Inventors: Geoffrey G. HANDSFIELD, Katherine R. KNAUS, Silvia S. BLEMKER, Craig H. MEYER, Joseph M. HART
  • Patent number: 9651645
    Abstract: Systems, methods of reducing off-resonance blurring in acquired magnetic resonance imaging data. The method includes acquiring a first set of spiral interleaf data for each of one or more spiral-in/out interleaves by performing a first sampling each of one or more locations in k-space along a first redundant spiral-in/out trajectory, and acquiring a second set of spiral interleaf data for each of the one or more spiral-in/out interleaves by performing a second sampling of each of the one or more locations in the k-space along a second redundant spiral-in/out trajectory, wherein the second redundant spiral-in/out trajectory corresponds to a time-reversed trajectory of the first redundant spiral-in/out trajectory. The method may yet further include combining the first set of spiral interleaf data and the second set of spiral interleaf data with an averaging operation such as to reduce artifacts.
    Type: Grant
    Filed: March 23, 2016
    Date of Patent: May 16, 2017
    Assignee: University of Virginia Patent Foundation
    Inventors: Samuel W. Fielden, Craig H. Meyer, Xue Feng
  • Patent number: 9589345
    Abstract: Systems and methods for accelerated arterial spin labeling (ASL) using compressed sensing are disclosed. In one aspect, in accordance with one example embodiment, a method includes acquiring magnetic resonance data associated with an area of interest of a subject, wherein the area of interest corresponds to one or more physiological activities of the subject. The method also includes performing image reconstruction using temporally constrained compressed sensing reconstruction on at least a portion of the acquired magnetic resonance data, wherein acquiring the magnetic resonance data includes receiving data associated with ASL of the area of interest of the subject.
    Type: Grant
    Filed: September 30, 2015
    Date of Patent: March 7, 2017
    Assignee: University of Virginia Patent Foundation
    Inventors: Li Zhao, Xiao Chen, Samuel W. Fielden, Frederick H. Epstein, John P. Mugler, III, Manal Nicolas-Jilwan, Max Wintermark, Craig H. Meyer
  • Publication number: 20160202335
    Abstract: Systems, methods of reducing off-resonance blurring in acquired magnetic resonance imaging data. The method includes acquiring a first set of spiral interleaf data for each of one or more spiral-in/out interleaves by performing a first sampling each of one or more locations in k-space along a first redundant spiral-in/out trajectory, and acquiring a second set of spiral interleaf data for each of the one or more spiral-in/out interleaves by performing a second sampling of each of the one or more locations in the k-space along a second redundant spiral-in/out trajectory, wherein the second redundant spiral-in/out trajectory corresponds to a time-reversed trajectory of the first redundant spiral-in/out trajectory. The method may yet further include combining the first set of spiral interleaf data and the second set of spiral interleaf data with an averaging operation such as to reduce artifacts.
    Type: Application
    Filed: March 23, 2016
    Publication date: July 14, 2016
    Inventors: Samuel W. Fielden, Craig H. Meyer, Xue Feng
  • Publication number: 20160148378
    Abstract: Some aspects of the present disclosure relate to systems and methods for three-dimensional spiral perfusion imaging. In one embodiment, a method for perfusion imaging of a subject includes acquiring perfusion imaging data associated with the heart of a subject. The acquiring includes applying an imaging pulse sequence with a three-dimensional stack-of-spirals trajectory. The method also includes reconstructing perfusion images from the acquired perfusion imaging data. The reconstructing includes parallel imaging and motion-guided compressed sensing. The method also includes determining, from the reconstructed perfusion images, absolute perfusion values based on time-intensity relationships to quantify myocardial blood flow of the heart of the subject, and generating a quantitative volumetric perfusion flow map based on the determined absolute perfusion values.
    Type: Application
    Filed: November 25, 2015
    Publication date: May 26, 2016
    Inventors: Michael Salerno, Craig H. Meyer, Xiao Chen, Yang Yang, Frederick H. Epstein, Christopher M. Kramer
  • Patent number: 9322896
    Abstract: Systems, methods of reducing off-resonance blurring in acquired magnetic resonance imaging data. The method includes acquiring a first set of spiral interleaf data for each of one or more spiral-in/out interleaves by performing a first sampling each of one or more locations in k-space along a first redundant spiral-in/out trajectory, and acquiring a second set of spiral interleaf data for each of the one or more spiral-in/out interleaves by performing a second sampling of each of the one or more locations in the k-space along a second redundant spiral-in/out trajectory, wherein the second redundant spiral-in/out trajectory corresponds to a time-reversed trajectory of the first redundant spiral-in/out trajectory. The method may yet further include combining the first set of spiral interleaf data and the second set of spiral interleaf data with an averaging operation such as to reduce artifacts.
    Type: Grant
    Filed: April 22, 2013
    Date of Patent: April 26, 2016
    Assignee: University of Virginia Patent Foundation
    Inventors: Samuel W. Fielden, Craig H. Meyer, Xue Feng
  • Publication number: 20160098835
    Abstract: Systems and methods for accelerated arterial spin labeling (ASL) using compressed sensing are disclosed. In one aspect, in accordance with one example embodiment, a method includes acquiring magnetic resonance data associated with an area of interest of a subject, wherein the area of interest corresponds to one or more physiological activities of the subject. The method also includes performing image reconstruction using temporally constrained compressed sensing reconstruction on at least a portion of the acquired magnetic resonance data, wherein acquiring the magnetic resonance data includes receiving data associated with ASL of the area of interest of the subject.
    Type: Application
    Filed: September 30, 2015
    Publication date: April 7, 2016
    Inventors: Li Zhao, Xiao Chen, Samuel W. Fielden, Frederick H. Epstein, John P. Mugler, III, Manal Nicolas-Jilwan, Max Wintermark, Craig H. Meyer
  • Patent number: 9183626
    Abstract: Systems and methods for accelerated arterial spin labeling (ASL) using compressed sensing are disclosed. In one aspect, in accordance with one example embodiment, a method includes acquiring magnetic resonance data associated with an area of interest of a subject, wherein the area of interest corresponds to one or more physiological activities of the subject. The method also includes performing image reconstruction using temporally constrained compressed sensing reconstruction on at least a portion of the acquired magnetic resonance data, wherein acquiring the magnetic resonance data includes receiving data associated with ASL of the area of interest of the subject.
    Type: Grant
    Filed: April 22, 2013
    Date of Patent: November 10, 2015
    Assignee: UNIVERSITY OF VIRGINIA PATENT FOUNDATION
    Inventors: Li Zhao, Xiao Chen, Samuel W. Fielden, Frederick H. Epstein, John P. Mugler, III, Manal Nicolas-Jilwan, Max Wintermark, Craig H. Meyer
  • Publication number: 20150316630
    Abstract: Some aspects of the present disclosure relate image reconstruction using a variable-density spiral trajectory. An exemplary method for image reconstruction includes acquiring MR data, which includes determining a multi-level undersampling pattern based on sampling distance and probability functions, and determining a desired variable-density spiral trajectory based on the undersampling pattern. Acquiring the MR data also includes generating spiral gradient waveforms based on the desired trajectory, and tracing a variable-density spiral trajectory using the spiral gradient waveforms. After tracing, the MR data can be sub-sampled based on the variable-density spiral trajectory. The method also includes reconstructing one or more images based on the acquired MR data.
    Type: Application
    Filed: April 2, 2015
    Publication date: November 5, 2015
    Inventors: Li Zhao, Craig H. Meyer
  • Publication number: 20150282719
    Abstract: Aspects of the present disclosure relate to systems and methods for medical imaging that incorporate prior knowledge. Some aspects relate to incorporating prior knowledge using a non-local means filter. Some aspects relate to incorporating prior knowledge for improved perfusion imaging, such as those incorporating arterial spin labeling.
    Type: Application
    Filed: April 2, 2015
    Publication date: October 8, 2015
    Inventors: Samuel Fielden, Li Zhao, Max Wintermark, Craig H. Meyer
  • Publication number: 20150282733
    Abstract: Aspects of the present disclosure relate to magnetic resonance thermometry. In one embodiment, a method includes acquiring undersampled magnetic resonance data associated with an area of interest of a subject receiving focused ultrasound treatment, and reconstructing images corresponding to the area of interest based on the acquired magnetic resonance data, where the reconstructing uses Kalman filtering.
    Type: Application
    Filed: April 2, 2015
    Publication date: October 8, 2015
    Inventors: Samuel Fielden, Li Zhao, Wilson Miller, Xue Feng, Max Wintermark, Kim Butts Pauly, Craig H. Meyer
  • Publication number: 20150285889
    Abstract: Some aspects of the present disclosure relate to accelerated imaging using variable-density sampling and compressed sensing with parallel imaging. In one embodiment, a method includes acquiring magnetic resonance data associated with a physiological activity in an area of interest of a subject. The acquiring includes performing accelerated variable-density sampling with phase-contrast displacement encoding. The method also includes reconstructing, from the acquired magnetic resonance data, images corresponding to the physiological activity in the area of interest. The reconstructing includes performing parallel imaging and compressed sensing.
    Type: Application
    Filed: April 2, 2015
    Publication date: October 8, 2015
    Inventors: Xiao Chen, Frederick H. Epstein, Yang Yang, Michael Salerno, Craig H. Meyer
  • Publication number: 20150287222
    Abstract: Some aspects of the present disclosure relate to tissue parameter mapping. In one embodiment of the present disclosure, a method includes receiving undersampled k-space data corresponding to a dynamic physiological process in an area of interest of a subject. The method also includes estimating, from the undersampled k-space data, one or more respective tissue parameter values representing a respective state of the dynamic process at each point in time of a predetermined plurality of points in time during the acquisition. The estimation includes unscented Kalman filtering. The method also includes generating one or more tissue parameter maps using the respective plurality of estimated tissue parameter values.
    Type: Application
    Filed: April 2, 2015
    Publication date: October 8, 2015
    Inventors: Li Zhao, Craig H. Meyer
  • Publication number: 20140152304
    Abstract: Systems, methods of reducing off-resonance blurring in acquired magnetic resonance imaging data. The method includes acquiring a first set of spiral interleaf data for each of one or more spiral-in/out interleaves by performing a first sampling each of one or more locations in k-space along a first redundant spiral-in/out trajectory, and acquiring a second set of spiral interleaf data for each of the one or more spiral-in/out interleaves by performing a second sampling of each of the one or more locations in the k-space along a second redundant spiral-in/out trajectory, wherein the second redundant spiral-in/out trajectory corresponds to a time-reversed trajectory of the first redundant spiral-in/out trajectory. The method may yet further include combining the first set of spiral interleaf data and the second set of spiral interleaf data with an averaging operation such as to reduce artifacts.
    Type: Application
    Filed: April 22, 2013
    Publication date: June 5, 2014
    Applicant: UNIVERSITY OF VIRGINIA LICENSING & VENTURES GROUP
    Inventors: Samuel W. Fielden, Craig H. Meyer, Xue Feng
  • Publication number: 20140044335
    Abstract: A method and system for providing a fast image reconstruction of magnetic resonance spectroscopic imaging (MRSI) data based on applying, at least in part, interferometric techniques using a single receiver element. The images are reconstructed through temporally cross-correlating spacially incoherent k-space locations.
    Type: Application
    Filed: April 19, 2012
    Publication date: February 13, 2014
    Applicant: UNIVERSITY OF VIRGINIA PATENT FOUNDATION
    Inventors: Kenneth O. Johnson, Craig H. Meyer