Patents by Inventor Jerimy Polf

Jerimy Polf 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: 10884139
    Abstract: Techniques for imaging radioactive emission in a target volume include receiving data indicating a set of one or more known emission energies associated with a high energy particle source and determining a Compton line for each emission energy in the set. A Compton camera collects location and deposited energy from an interaction associated with a single source event from a target volume of a subject. For the single source event, an earliest deposited energy, E1, and first scattering angle, ?1, and a cone of possible locations for the source event are determined. A particular location for the high energy particle source within the target volume without including the single source event, if E1 is not within a predetermined interval of the Compton line for at least one of known emission energies. A solution is presented on a display device.
    Type: Grant
    Filed: March 8, 2017
    Date of Patent: January 5, 2021
    Assignees: University of Maryland, Baltimore, Board of Regents, The University of Texas System
    Inventors: Jerimy Polf, Emily Draeger, Stephen Peterson, Dennis Mackin, A. Sam Beddar
  • Patent number: 10502845
    Abstract: Techniques for imaging radioactive emission in a target volume include collecting from each of multiple detectors in a Compton camera, within a coincidence time interval, location and deposited energy from an interaction associated with each high energy particle source event in a target volume, for N source events. A cone of possible locations for each source event is determined based on the locations and deposited energies collected. A SOE algorithm is initiated by selecting a random location on the cone and generating a histogram that indicates, a count of the selected locations that occur inside each voxel of the target volume. N solution locations for the N source events are determined after L iterations by updating the selected location on a corresponding cone based at least in part on values of the counts in the histogram excluding the current source event. A solution is presented on a display device.
    Type: Grant
    Filed: June 24, 2016
    Date of Patent: December 10, 2019
    Assignees: University Of Baltimore, Maryland, Board of Regents, The University of Texas System
    Inventors: Jerimy Polf, Emily Draeger, Stephen Peterson, Dennis Mackin, A. Sam Beddar
  • Publication number: 20190094390
    Abstract: Techniques for imaging radioactive emission in a target volume include receiving data indicating a set of one or more known emission energies associated with a high energy particle source and determining a Compton line for each emission energy in the set. A Compton camera collects location and deposited energy from an interaction associated with a single source event from a target volume of a subject. For the single source event, an earliest deposited energy, E1, and first scattering angle, ?1, and a cone of possible locations for the source event are determined. A particular location for the high energy particle source within the target volume without including the single source event, if E1 is not within a predetermined interval of the Compton line for at least one of known emission energies. A solution is presented on a FILTER display device.
    Type: Application
    Filed: March 8, 2017
    Publication date: March 28, 2019
    Inventors: Jerimy Polf, Emily Draeger, Stephen Peterson, Dennis Mackin, A. Sam Beddar
  • Publication number: 20180188392
    Abstract: Techniques for imaging radioactive emission in a target volume include collecting from each of multiple detectors in a Compton camera, within a coincidence time interval, location and deposited energy from an interaction associated with each high energy particle source event in a target volume, for N source events. A cone of possible locations for each source event is determined based on the locations and deposited energies collected. A SOE algorithm is initiated by selecting a random location on the cone and generating a histogram that indicates, a count of the selected locations that occur inside each voxel of the target volume. N solution locations for the N source events are determined after L iterations by updating the selected location on a corresponding cone based at least in part on values of the counts in the histogram excluding the current source event. A solution is presented on a display device.
    Type: Application
    Filed: June 24, 2016
    Publication date: July 5, 2018
    Applicant: University Of Baltimore, Maryland
    Inventors: Jerimy Polf, Emily Draeger, Stephen Peterson, Dennis Mackin, A. Sam Beddar