IP Library › Granted Patent US 12,611,148
Granted Patent B2
US 12,611,148 · App. 18/311,727 · Granted Apr 28, 2026

Systems and methods for SPECT detector calibration

Inventors: Roi Harpaz (Center District, IL); Leonid Tsukerman (Haifa District, IL); Yaron Hefetz (Herzeliya, IL)
Assignee: GE PRECISION HEALTHCARE LLC
A61B6/037G01T1/2985G01T7/005
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Quick Facts
Patent No.
US 12,611,148
App. No.
18/311,727
Granted
Apr 28, 2026
Kind
B2
Abstract

Methods and systems are provided for calibrating a single photon emission computed tomography (SPECT) imaging system. In one example, a collimated line source for calibrating a SPECT system comprises a radioactive material aligned along a central axis of the collimated line source and a plurality of collimator plates arranged perpendicularly around the central axis, the collimator plates including a material that substantially absorbs photons striking the collimator plates. The collimator plates may absorb photons emitted by the radioactive material in non-perpendicular directions, which are not used for calibrating the SPECT imaging system, thereby reducing an amount of radiation released in an environment of the SPECT imaging system during calibration. Due to the reduced amount of radiation to which people in the environment are exposed, short time increments between patient examinations may be advantageously used to collect calibration data, reducing an overall amount of time used for calibration.

Claims (34)

1 . A collimated line source for calibrating a single photon emission computed tomography (SPECT) imaging system, the collimated line source comprising a radioactive material aligned along a central axis of the collimated line source and a plurality of collimator plates arranged perpendicularly around the central axis, the collimator plates including a material with an atomic number and a density to substantially absorb photons striking the collimator plates;

wherein the collimator plates have a circular, disc shape, and the collimated line source has a cylindrical shape.

2 . The collimated line source of claim 1 , wherein the collimator plates are made of one of lead, tungsten, or molybdenum.

3 . The collimated line source of claim 1 , wherein the collimator plates are evenly spaced along the central axis.

4 . The collimated line source of claim 3 , wherein the collimated line source includes a first end cap at a first end of the collimated line source, and a second end cap at a second, opposing end of the collimated line source, the first end cap and the second end cap including a same material as the collimator plates.

5 . The collimated line source of claim 4 , wherein the collimated line source is coupled to a shielded container, and the collimated line source is partially removable from the shielded container to expose the collimator plates.

6 . The collimated line source of claim 1 , further comprising one or more shielding portions that partially shield the plurality of collimator plates arranged perpendicularly around the radioactive material, the one or more shielding portions forming one or more windows through which photons emitted by the radioactive material pass.

7 . A method for calibrating a single photon emission computed tomography (SPECT) imaging system, the method comprising:

collecting calibration data of the SPECT imaging system using a collimated line source of radiation, during increments of time between performing patient examinations using the SPECT imaging system, while one or more persons are present in an environment of the SPECT imaging system; and

after a sufficient amount of calibration data has been collected, calibrating the SPECT imaging system using the amount of collected calibration data;

wherein the collimator plates are circular discs, and the collimated line source has a cylindrical shape including shielding at a first end and a second end of the collimated line source.

8 . The method of claim 7 , wherein the collimated line source comprises a radioactive material aligned along a central axis of the collimated line source and a plurality of collimator plates arranged perpendicularly around the central axis, the collimator plates including a material that substantially absorbs photons emitted by the radioactive material.

9 . The method of claim 7 , further comprising storing the collimated line source in a shielded container having a hollow cylindrical shape, an inner diameter of the shielded container equal to an outer diameter of the collimated line source.

10 . The method of claim 7 , further comprising storing the collimated line source in a compartment in a base of a bed of the SPECT imaging system.

11 . The method of claim 10 , wherein collecting calibration data using the collimated line source further comprises:

in response to an operator of the SPECT imaging system selecting a control element on a display device of the SPECT imaging system:

extracting the collimated line source from the compartment and positioning the collimated line source within a gantry of the SPECT imaging system for collecting the calibration data; and

after the calibration data has been collected, retracting the collimated line source into the compartment.

12 . The method of claim 11 , wherein extracting the collimated line source from the compartment and positioning the collimated line source within the gantry of the SPECT imaging system further comprises:

adjusting a height of the bed such that the compartment is vertically aligned with a central axis of a bore of the gantry;

removing the collimated line source from a shielded container;

mechanically extending the collimated line source horizontally out of the compartment using a retraction apparatus included in the compartment.

13 . The method of claim 7 , wherein the collected calibration data is used to retroactively correct images generated by the SPECT imaging system prior to calibrating the SPECT imaging system.

14 . A single photon emission computed tomography (SPECT) imaging system, comprising:

a collimated line source stored in a compartment of the SPECT imaging system, the collimated line source having a cylindrical shape including a radioactive material aligned along a central axis of the collimated line source and a plurality of circular, disc-shaped collimator plates arranged perpendicularly around the central axis that absorb photons emitted by the radioactive material;

a controller including instructions stored in a memory of the SPECT imaging system, that when executed, cause the controller to:

in response to a user input from an operator of the SPECT imaging system, extract the collimated line source from a compartment of the SPECT imaging system and position the collimated line source within a gantry of the SPECT imaging system;

collect calibration data of the SPECT imaging system using the collimated line source;

retract the collimated line source into the compartment after collecting the calibration data; and

calibrate the SPECT imaging system based on the collected calibration data.

15 . The SPECT imaging system of claim 14 , wherein the calibration data is collected during a calibration data collection session between an end of a first patient examination using the SPECT imaging system, and a beginning of a second patient examination using the SPECT imaging system.

16 . The SPECT imaging system of claim 15 , wherein further instructions are stored in the memory that when executed, cause the controller to aggregate calibration data collected over a plurality of calibration data collection sessions, and calibrate the SPECT imaging system based on the aggregated calibration data.

17 . The SPECT imaging system of claim 14 , wherein extracting the collimated line source from the compartment further comprises extracting the collimated line source from a shielded container in which the collimated line source is stored when the collimated line source is not being used to collect the calibration data, and retracting the collimated line source into the compartment further comprises inserting the collimated line source into the shielded container.

18 . The SPECT imaging system of claim 14 , wherein the collimator plates are configured in parallel around the radioactive material, such that photons emitted by the radioactive material in angles perpendicular to the collimated line source pass through the collimator plates, and photons emitted by the radioactive material in angles other than perpendicular to the collimated line source are absorbed by the collimator plates.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 3, 2023
From: HARPAZ, ROI; TSUKERMAN, LEONID; HEFETZ, YARON
To: GE PRECISION HEALTHCARE LLC
Reel/Frame 063524/0292 →
Continuity (1)
Related Publication 20240369725A1 · Nov 7, 2024
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