IP Library › Granted Patent US 12,730,232
Granted Patent B2
US 12,730,232 · App. 18/283,095 · Granted Sep 8, 2026

Pulse shaper circuit

Inventor: Christoph Herrmann (Aachen, DE)
Assignee: KONINKLIJKE PHILIPS N.V.
G01T1/171G01T1/247G01T1/2928
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Quick Facts
Patent No.
US 12,730,232
App. No.
18/283,095
Granted
Sep 8, 2026
Kind
B2
Abstract

A pulse shaper circuit ( 200 ) for use in a spectral photon counting detector ( 120 ) includes an integrator ( 210 ) and a reset circuit ( 230 ). The integrator ( 210 ) includes an output ( 220 ) that generates an output pulse (V(t))) having an amplitude (V peak ) indicative of an energy of a detected photon. The reset circuit ( 230 ) discharges the integrator ( 210 ) a first time period (DT 1 ) after the output ( 220 ) of the integrator ( 210 ) exceeds a first threshold value (V 1 ). The reset circuit ( 230 ) also discharges the integrator ( 210 ) if the output ( 220 ) of the integrator ( 210 ) exceeds an initial threshold value (V 0 ), which is lower than the first threshold value (V 1 ), and does not subsequently exceed the first threshold value (V 1 ) within a predetermined time interval (DT 0 ) after the initial threshold value (V 0 ) is exceeded.

Claims (25)

1 . A pulse shaper circuit for use in a spectral photon counting detector, comprising:

an integrator comprising an output configured to generate an output pulse having an amplitude indicative of an energy of a detected photon; and

a reset circuit configured to discharge the integrator a first time period after the output of the integrator exceeds a first threshold value;

wherein the reset circuit is further configured to discharge the integrator when the output of the integrator exceeds an initial threshold value, which is lower than the first threshold value, and does not subsequently exceed the first threshold value within a predetermined time interval starting at a point in time at which the initial threshold value is exceeded.

2 . The pulse shaper circuit according to claim 1 , wherein the reset circuit is further configured to periodically sample the output of the integrator; and wherein the reset circuit is further configured to discharge the integrator in response to the output of the integrator exceeding the initial threshold value and the output of the integrator not subsequently exceeding the first threshold value within the predetermined time interval after the initial threshold value is exceeded only if the output of the integrator exceeds the initial threshold value for at least a predetermined number of samples within the predetermined time interval and the output of the integrator does not exceed the first threshold value within the predetermined time interval.

3 . The pulse shaper circuit according to claim 2 , wherein the samples are consecutive samples.

4 . The pulse shaper circuit according to claim 1 , wherein the reset circuit is further configured to discharge the integrator in response to the output of the integrator exceeding the initial threshold value and the output of the integrator not subsequently exceeding the first threshold value within the predetermined time interval after the initial threshold value is exceeded only after the expiry of an expected time of the output of the integrator reaching the first threshold value, wherein the expected time of the output of the integrator reaching the first threshold value represents a time of the output of the integrator reaching the first threshold value for a detected photon having an energy that causes the first threshold value to be exceeded.

5 . The pulse shaper circuit according to claim 1 , wherein the first threshold value represents a lowest energy limit of a lowest energy bin of the spectral photon counting detector.

6 . The pulse shaper circuit according to claim 1 , wherein the first time period represents a time at which the output of the integrator reaches a maximum value.

7 . The pulse shaper circuit according to claim 1 , comprising a comparator circuit and a counter circuit, wherein the comparator circuit is configured to compare the output of the integrator with a plurality of threshold values, and wherein the counter circuit is configured to determine count values representing a number of times each of the respective plurality of threshold values are exceeded.

8 . The pulse shaper circuit according to claim 7 , wherein the counter circuit is configured to determine the count values representing a number of times each of the respective plurality of threshold values are exceeded within a period corresponding to an X-ray image frame.

9 . The pulse shaper circuit according to claim 1 , wherein the integrator comprises a feedback capacitor, and wherein the feedback capacitor is coupled between the output of the integrator and an input of the integrator.

10 . The pulse shaper circuit according to claim 1 , wherein the reset circuit comprises a switch configured to couple the output of the integrator to an input of the integrator for discharging the integrator.

11 . The pulse shaper circuit according to claim 1 , wherein the integrator comprises a feedback capacitor, and wherein the reset circuit comprises a current source configured to inject a charge into the feedback capacitor for discharging the integrator.

12 . An imaging system, comprising:

a spectral photon counting detector which includes a pulse shaper circuit comprising:

an integrator comprising an output configured to generate an output pulse having an amplitude indicative of an energy of a detected photon; and

a reset circuit configured to discharge the integrator a first time period after the output of the integrator exceeds a first threshold value;

wherein the reset circuit is further configured to discharge the integrator when the output of the integrator exceeds an initial threshold value, which is lower than the first threshold value, and does not subsequently exceed the first threshold value within a predetermined time interval starting at a point in time at which the initial threshold value is exceeded; and

an X-ray source;

wherein the X-ray source and the spectral photon counting detector are separated by an imaging region for generating X-ray image data representing attenuation of X-rays passing through an object in the imaging region between the X-ray source and the spectral photon counting detector.

13 . A pulse shaping method for use in a spectral photon counting detector, comprising:

integrating an electrical pulse representing a detected photon to generate an integration output value; and

resetting the integration output value a first time period after the integration output value exceeds a first threshold value;

wherein the resetting further comprises resetting the integration output value when the integration output value exceeds an initial threshold value, which is lower than the first threshold value, and does not subsequently exceed the first threshold value within a predetermined time interval starting at a point in time at which the initial threshold value is exceeded.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 20, 2023
From: HERRMANN, CHRISTOPH
To: KONINKLIJKE PHILIPS N.V.
Reel/Frame 064968/0458 →
Priority Claims (1)
EP 21163924 · Mar 22, 2021 · regional
Continuity (1)
Related Publication 20240168179A1 · May 23, 2024
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