Patents by Inventor Shigao Chen

Shigao Chen 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: 11058398
    Abstract: Systems and methods for performing shear wave elastography using push and/or detection ultrasound beams that are generated by subsets of the available number of transducer elements in an ultrasound transducer. These techniques provide several advantages over currently available approaches to shear wave elastography, including the ability to use a standard, low frame rate ultrasound imaging system and the ability to measure shear wave speed throughout the entire field-of-view rather than only those regions where the push beams are not generated.
    Type: Grant
    Filed: June 29, 2018
    Date of Patent: July 13, 2021
    Assignee: Mayo Foundation for Medical Education and Research
    Inventors: James F. Greenleaf, Shigao Chen, Pengfei Song, Armando Manduca
  • Publication number: 20210085293
    Abstract: Methods for contrast-enhanced ultrasound imaging that implement coded multi-pulses in each of two or more different transmission events are described. Data acquired in response to the two different transmission events are decoded and combined. In some embodiments, the coded multi-pulses include two or more consecutive Hadamard encoded ultrasound pulses. In other embodiments, multiplane wave pulses can be used. Such multiplane wave pulses can be coded using Hadamard encoding, as one example. In addition, the multiplane wave pulses can be further coded using amplitude modulation, pulse inversion, or pulse inversion amplitude modulation techniques.
    Type: Application
    Filed: July 26, 2018
    Publication date: March 25, 2021
    Inventors: Ping Gong, Shigao Chen, Pengfei Song
  • Patent number: 10779799
    Abstract: A method for imaging an object by ultrasound elastography through continuous vibration of the ultrasound transducer is taught. An actuator directly in contact with the ultrasound transducer continuously vibrates the transducer in an axial direction, inducing shear waves in the tissue and allowing for real-time shear wave imaging. Axial motion of the transducer contaminates the shear wave images of the tissue, and must be suppressed. Therefore, several methods for correcting for shear wave artifact caused by the motion of the transducer are additionally taught.
    Type: Grant
    Filed: October 28, 2015
    Date of Patent: September 22, 2020
    Assignee: Mayo Foundation for Medical Education and Research
    Inventors: Shigao Chen, James Greenleaf, Daniel C. Mellema, Pengfei Song
  • Publication number: 20200275913
    Abstract: Systems and methods for harmonic shear wave detection using low frame rate ultrasound, or a three-dimensional (3D) volumetric scan, are provided. As one example, spurious motion sources, such as intrinsic tissue motion and waves that are not at the incident wave harmonic frequency, are removed based on a scanning sequence in which repeated acquisitions from a given subvolume occur closely in time so as to render effects of the spurious motions negligible. As another example, sampling frequency and center frequency are selected such that the spurious motion signal spectra do not overlap with aliased shear wave motion spectra, such that the spurious motions can be filtered.
    Type: Application
    Filed: November 14, 2018
    Publication date: September 3, 2020
    Inventors: Pengfei Song, Shigao Chen
  • Publication number: 20200183004
    Abstract: Systems and methods for ultrasound imaging using a delay-encoded harmonic imaging (“DE-HI”) technique is provided. An ultrasound pulse sequence is coded using temporal delays between ultrasound emissions within a single transmission event. This coded scheme allows for harmonic imaging to be implemented. The temporal time delay-codes are applied temporally to multiple different ultrasound emissions within a single transmission event, rather than spatially across different transmitting elements. The received radio frequency (“RF”) signals undergo a decoding process in the frequency domain to recover the signals, as they would be obtained from standard single emissions, for subsequent compounding. As one specific example, a one-quarter period time delay can be used to encode second harmonic signals from each angle emission during a single multiplane wave (“MW”) transmission event, rather than inverting the polarity of the pulses as in conventional MW imaging.
    Type: Application
    Filed: October 19, 2017
    Publication date: June 11, 2020
    Inventors: Ping Gong, Pengfei Song, Shigao Chen
  • Publication number: 20200178939
    Abstract: Systems and methods for super-resolution ultrasound imaging of microvessels in a subject are described. Ultrasound data are acquired from a region-of-interest in a subject who has been administered a microbubble contrast agent. The ultrasound data are acquired while the microbubbles are moving through, or otherwise present in, the region-of-interest. The region-of-interest may include, for instance, microvessels or other microvascuiature in the subject. By isolating, localizing, tracking, and accumulating the microbubbles in the ultrasound data, super-resolution images of the microvessels can be generated.
    Type: Application
    Filed: May 30, 2018
    Publication date: June 11, 2020
    Inventors: Pengfei Song, Joshua D. Trzasko, Armando Manduca, Shigao Chen
  • Publication number: 20200146656
    Abstract: Systems and methods for estimating acoustic properties in a region-of-interest in a subject or other object being imaged using a reference frequency method (“RFM”) is described. Using this RFM technique, ultrasound data acquired at a given frequency are normalized by ultrasound data acquired at different frequencies (e.g., adjacent frequencies or otherwise) in order to provide estimations of the acoustic properties (e.g., attenuation coefficient, a backscatter coefficient, or both) that are independent of the ultrasound system used to acquire the underlying data. For instance, the amplitude of each frequency component can be normalized by a different frequency in the power spectrum to cancel out the system-dependent effects. Because the methods described in the present disclosure are system independent, they can be applied to any transducer geometry (e.g., linear or curved arrays) and using any beam pattern (e.g., focused or unfocused).
    Type: Application
    Filed: June 22, 2018
    Publication date: May 14, 2020
    Inventors: Ping Gong, Pengfei Song, Shigao Chen, Joshua D. Trzasko
  • Patent number: 10624609
    Abstract: Systems and methods for performing shear wave elastography using push and/or detection ultrasound beams that are generated by subsets of the available number of transducer elements in an ultrasound transducer. These techniques provide several advantages over currently available approaches to shear wave elastography, including the ability to use a standard, low frame rate ultrasound imaging system and the ability to measure shear wave speed throughout the entire field-of-view rather than only those regions where the push beams are not generated.
    Type: Grant
    Filed: October 7, 2013
    Date of Patent: April 21, 2020
    Assignee: Mayo Foundation for Medical Education and Research
    Inventors: James F. Greenleaf, Shigao Chen, Pengfei Song, Heng Zhao
  • Publication number: 20190261948
    Abstract: Systems and methods for ultrafast synthetic transmit aperture (“USTA”) ultrasound imaging using coded virtual sources are described. The methods can implement spatially distinct or spatially overlapping sub-apertures with appropriate timing of transmission between the spatially overlapping sub -apertures. The systems and methods described here are capable of increasing signal-to-noise ratio (“SNR”) and spatial resolution to reduce frame rate.
    Type: Application
    Filed: September 14, 2017
    Publication date: August 29, 2019
    Applicant: Mayo Foundation for Medical Education and Research
    Inventors: Ping Gong, Pengfei Song, Shigao Chen
  • Patent number: 10357226
    Abstract: A model-independent method for producing a viscoelastic tissue property metric using ultrasound is provided. A mechanical stress, such as an acoustic force, is applied to a tissue using an ultrasound system and tissue displacement resulting from the applied acoustic force is measured. From the tissue displacement measurements, a complex modulus, such as a relative complex modulus, is extracted. A loss tangent is calculated from the extracted complex modulus. Using the calculated loss tangent, viscoelastic tissue property metrics may be calculated.
    Type: Grant
    Filed: March 12, 2013
    Date of Patent: July 23, 2019
    Assignee: Mayo Foundation for Medical Education and Research
    Inventors: Carolina Amador Carrascal, Matthew W. Urban, Shigao Chen, James F. Greenleaf
  • Publication number: 20190076126
    Abstract: Described here are systems and methods for estimating shear wave velocity from data acquired with a shear wave elastography system. More particularly, the systems and methods described here implement a spatiotemporal time-to-peak algorithm that searches for the times at which shear wave motion is at a maximum while also searching for the lateral locations at which shear wave motion is at a maximum. Motion can include displacement, velocity, or acceleration caused by propagating shear waves. A fitting procedure (e.g., a linear fit) is performed on a combined set of these temporal peaks and spatial peaks to estimate the shear wave velocity, from which mechanical properties can be computed. Motion amplitude thresholding can also be used to increase the number of points for the fitting.
    Type: Application
    Filed: March 14, 2017
    Publication date: March 14, 2019
    Inventors: James F. Greenleaf, Carolina Amador Carrascal, Shigao Chen, Matthew W. Urban, Armando Manduca
  • Publication number: 20190053780
    Abstract: Described here are systems and methods for imaging blood flow in a subject's vasculature, which may include small blood vessels, using ultrasound without the need for a contrast agent. A locally implemented low-rank matrix decomposition is used together with adaptive cutoff values to provide noninvasive ultrasound blood flow imaging capable of imaging the subject's vasculature with very high spatial and temporal resolution, and without the administration of contrast agents such as microbubble contrast agents. Thus, in some instances the systems and methods can be used to image blood flow in small vessels and tissue microvasculature with high spatial and temporal resolution.
    Type: Application
    Filed: February 2, 2017
    Publication date: February 21, 2019
    Inventors: Pengfei SONG, Armando MANDUCA, Shigao CHEN, Joshua TRZASKO
  • Publication number: 20180317887
    Abstract: Systems and methods for performing shear wave elastography using push and/or detection ultrasound beams that are generated by subsets of the available number of transducer elements in an ultrasound transducer. These techniques provide several advantages over currently available approaches to shear wave elastography, including the ability to use a standard, low frame rate ultrasound imaging system and the ability to measure shear wave speed throughout the entire field-of-view rather than only those regions where the push beams are not generated.
    Type: Application
    Filed: June 29, 2018
    Publication date: November 8, 2018
    Inventors: James F. Greenleaf, Shigao Chen, Pengfei Song, Armando Manduca
  • Publication number: 20180296191
    Abstract: Systems and methods for processing data acquired using ultrasound elastography, in which shear waves are generated in a subject using continuous vibration of an ultrasound transducer, are provided. The systems and methods described here can effectively remove motion artifacts associated with vibration of the ultrasound transducer, and can also remove the data sampling misalignment caused when a line-by-line imaging mode is used to acquire data, as is done by many conventional ultrasound scanners. Thus, the systems and methods described here provide techniques for transducer motion correction and for aligning motion signals detected by line-by-line scanning ultrasound systems.
    Type: Application
    Filed: October 6, 2016
    Publication date: October 18, 2018
    Inventors: Daniel C. Mellema, Pengfei Song, Matthew W. Urban, Armando Manduca, James F. Greenleaf, Shigao Chen
  • Publication number: 20180220997
    Abstract: Described here are systems and methods for ultrasound clutter filtering to produce images of blood flow in a subject. In general, the clutter filtering is based on a singular value implementation, such as an accelerated singular value decomposition (“SVD”). In one example, the singular value-based clutter filtering can be accelerated by implementing a randomized SVD (“rSVD”). In another example, the singular value-based clutter filtering can be accelerated by implementing a randomized spatial downsampling. In still another example, singular value-based clutter filtering can be accelerated by implementing both an rSVD and a randomized spatial downsampling.
    Type: Application
    Filed: February 2, 2018
    Publication date: August 9, 2018
    Inventors: Pengfei Song, Joshua D. Trzasko, Armando Manduca, Shigao Chen
  • Patent number: 9986973
    Abstract: A shear wave dispersion ultrasound vibrometry (“SDUV”) method for measuring a mechanical property of a subject is provided. Particularly, a set of ultrasonic vibration tone bursts is applied to a vibration origin in the subject so that harmonic vibratory motion is imparted to a tissue of interest. The set of vibration tone bursts effectively act like a single vibration pulse that imparts vibratory motion at larger amplitudes than achievable with a single pulse. Multiple ultrasonic detection pulses are then applied to two or more locations in the tissue of interest in order to measure shear waves propagating outward from the vibration origin. From these measurements, phase or amplitude information related to the shear wave propagation is determined and used to calculate a shear wave speed. Using the shear wave speed information, mechanical properties of the tissue are calculated.
    Type: Grant
    Filed: April 22, 2011
    Date of Patent: June 5, 2018
    Assignee: MAYO Foundation for Medical Education and Research
    Inventors: Shigao Chen, James F. Greenleaf
  • Patent number: 9883851
    Abstract: A system and method for performing a steered push beam (SPB) technique to create multiple foci generated by the interference of different ultrasound push beams to create shear waves and, based thereon, generate a report indicating mechanical properties about an object.
    Type: Grant
    Filed: March 20, 2015
    Date of Patent: February 6, 2018
    Assignee: Mayo Foundation for Medical Education and Research
    Inventors: Matthew W. Urban, Alireza Nabavizadehrafsanjani, Pengfei Song, Shigao Chen, James F. Greenleaf
  • Publication number: 20170333005
    Abstract: A method for imaging an object by ultrasound elastography through continuous vibration of the ultrasound transducer is taught. An actuator directly in contact with the ultrasound transducer continuously vibrates the transducer in an axial direction, inducing shear waves in the tissue and allowing for real-time shear wave imaging. Axial motion of the transducer contaminates the shear wave images of the tissue, and must be suppressed. Therefore, several methods for correcting for shear wave artifact caused by the motion of the transducer are additionally taught.
    Type: Application
    Filed: October 28, 2015
    Publication date: November 23, 2017
    Inventors: Shigao Chen, James Greenleaf, Daniel C. Mellema, Pengfei Song
  • Publication number: 20170209117
    Abstract: Systems and methods are provided for measuring and isolating circumferential wave speed within a vessel wall of a substantially cylindrical vessel. The methods include measuring a motion at a first location and a second location opposite the first location and isolating the circumferential wave speed. The methods also include generating a report using the longitudinal or circumferential wave speeds.
    Type: Application
    Filed: July 29, 2015
    Publication date: July 27, 2017
    Inventors: Matthew W. Urban, Shigao Chen, James F. Greenleaf
  • Patent number: 9642600
    Abstract: The present invention provides a system and method for ultrasound processes using wave attenuation derived from k-space analysis by analyzing spatial frequency domain data.
    Type: Grant
    Filed: September 30, 2013
    Date of Patent: May 9, 2017
    Assignee: Mayo Foundation for Medical Education and Research
    Inventors: Ivan Z. Nenadic, Shigao Chen, James F. Greenleaf, Matthew W. Urban, Bo Qiang, Heng Zhao