IP Library › Granted Patent US 12,222,241
Granted Patent B2
US 12,222,241 · App. 18/684,686 · Granted Feb 11, 2025

Method and apparatus for extracting avalanche signal

Inventors: Liuping Chen (Beijing, CN); Yongsheng Fan (Beijing, CN); Liting Tong (Beijing, CN); Xiangsheng She (Beijing, CN); Nan Li (Beijing, CN); Qibing Wang (Beijing, CN); Xiangkui Wan (Beijing, CN)
Assignee: QUDOOR TECHNOLOGIES INC.
G01J1/44H01L31/107G01J2001/4466
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Quick Facts
Patent No.
US 12,222,241
App. No.
18/684,686
Granted
Feb 11, 2025
Kind
B2
Abstract

The disclosure provides a method and apparatus for extracting an avalanche signal. The method includes: obtaining an avalanche photodiode (APD) signal output by a single-photon detector, wherein the APD signal comprises an upper spike and a lower spike, the upper spike is generated along with a rising edge of a gating signal, and the lower spike is generated along with a falling edge of the gating signal; determining a delay position of the upper spike in the APD signal, so as to determine a delay position of the lower spike in the APD signal based on a pulse width of the gating signal; shifting a coincidence gate signal, so as to align a delay position of a falling edge of the coincidence gate signal with the delay position of the lower spike in the APD signal, wherein a pulse width of the coincidence gate signal is smaller than the pulse width of the gating signal; and extracting, as the avalanche signal, a second pulse that is generated through an AND operation on a first pulse that is generated by a partial signal, exceeding a discrimination threshold, in the APD signal and the coincidence gate signal.

Claims (41)

1. A method for extracting an avalanche signal, comprising:

obtaining an avalanche photodiode (APD) signal output by a single-photon detector, wherein the APD signal comprises an upper spike and a lower spike, the upper spike is generated along with a rising edge of a gating signal, and the lower spike is generated along with a falling edge of the gating signal;

determining a delay position of the upper spike in the APD signal, so as to determine a delay position of the lower spike in the APD signal based on a pulse width of the gating signal;

shifting a coincidence gate signal, so as to align a delay position of a falling edge of the coincidence gate signal with the delay position of the lower spike in the APD signal, wherein a pulse width of the coincidence gate signal is smaller than the pulse width of the gating signal; and

extracting, as the avalanche signal, a second pulse that is generated through an AND operation on a first pulse that is generated by a partial signal, exceeding a discrimination threshold, in the APD signal and the coincidence gate signal.

2. The method according to claim 1 , wherein the determining the delay position of the upper spike in the APD signal comprises:

adjusting the pulse width of the coincidence gate signal to a maximum, gradually decreasing the discrimination threshold from an upper portion of the APD signal to a lower portion of the APD signal according to a predetermined step, and counting, for each decreased discrimination threshold, the second pulses that are generated through an AND operation on the first pulses and the coincidence gate signal until the counting for the second pulses goes from non-zero to zero;

adjusting the pulse width of the coincidence gate signal to a minimum, gradually shifting the coincidence gate signal from a left side of the APD signal to a right side of the APD signal according to a predetermined step, counting, for each shifted coincidence gate signal, the second pulses that are generated through an AND operation on the first pulses and the coincidence gate signal, and recording a first delay position of the coincidence gate signal in a case that the counting for the second pulses first goes from non-zero to zero and a second delay position of the coincidence gate signal in a case that the counting for the second pulses first goes from zero to non-zero; and

determining a midpoint between the first delay position and the second delay position as the delay position of the upper spike in the APD signal.

3. A non-transitory computer-readable storage medium, storing a computer program, wherein the computer program implements the method for extracting an avalanche signal according to claim 2 when executed by a processor.

4. A computation apparatus, comprising:

a processor, and

a memory, wherein the memory stores a computer program, and the computer program implements the method for extracting an avalanche signal according to claim 2 when executed by the processor.

5. The method according to claim 1 , further comprising:

Determining the discrimination threshold based on a spike in an avalanche section adjacent to the lower spike in the APD signal under the condition that no avalanche occurs.

6. The method according to claim 5 , wherein the determining the discrimination threshold based on the spike in an avalanche section adjacent to the lower spike in the APD signal under the condition that no avalanche occurs comprises:

adjusting the pulse width of the coincidence gate signal to be equal to a duration of the avalanche section under the condition that no avalanche occurs, gradually decreasing the discrimination threshold from an upper portion of the APD signal to a lower portion of the APD signal according to a predetermined step, and counting, for each decreased discrimination threshold, the second pulses that are generated through an AND operation on the first pulses that are generated by a partial signal, exceeding the discrimination threshold, of the APD signal that is located in the avalanche section and the coincidence gate signal until the counting for the second pulses goes from non-zero to zero.

7. A non-transitory computer-readable storage medium, storing a computer program, wherein the computer program implements the method for extracting an avalanche signal according to claim 6 when executed by a processor.

8. A computation apparatus, comprising:

a processor, and

a memory, wherein the memory stores a computer program, and the computer program implements the method for extracting an avalanche signal according to claim 6 when executed by the processor.

9. A non-transitory computer-readable storage medium, storing a computer program, wherein the computer program implements the method for extracting an avalanche signal according to claim 5 when executed by a processor.

10. A computation apparatus, comprising:

a processor, and

a memory, wherein the memory stores a computer program, and the computer program implements the method for extracting an avalanche signal according to claim 5 when executed by the processor.

11. A non-transitory computer-readable storage medium, storing a computer program, wherein the computer program implements the method for extracting an avalanche signal according to claim 1 when executed by a processor.

12. A computation apparatus, comprising:

a processor, and

a memory, wherein the memory stores a computer program, and the computer program implements the method for extracting an avalanche signal according to claim 1 when executed by the processor.

13. An apparatus for extracting an avalanche signal, comprising:

an avalanche photodiode (APD) signal obtaining unit, configured to obtain an APD signal output by a single-photon detector, wherein the APD signal comprises an upper spike and a lower spike, the upper spike is generated along with a rising edge of a gating signal, and the lower spike is generated along with a falling edge of the gating signal;

a spike position determining unit, configured to determine a delay position of the upper spike in the APD signal, so as to determine a delay position of the lower spike in the APD signal based on a pulse width of the gating signal;

a coincidence gate adjustment unit, configured to shift a coincidence gate signal, so as to align a delay position of a falling edge of the coincidence gate signal with the delay position of the lower spike in the APD signal, wherein a pulse width of the coincidence gate signal is smaller than the pulse width of the gating signal; and

a coincidence discrimination unit, configured to extract, as the avalanche signal, a second pulse that is generated through an AND operation on a first pulse that is generated by a partial signal, exceeding a discrimination threshold, in the APD signal and the coincidence gate signal.

14. The apparatus according to claim 13 , wherein the spike position determining unit comprises:

a threshold scanning unit, configured to adjust the pulse width of the coincidence gate signal to a maximum, gradually decrease the discrimination threshold from an upper portion of the APD signal to a lower portion of the APD signal according to a predetermined step, and count, for each decreased discrimination threshold, the second pulses that are generated through an AND operation on the first pulses until the counting for the second pulses goes from non-zero to zero;

a coincidence gate scanning unit, configured to adjust the pulse width of the coincidence gate signal to a minimum, gradually shift the coincidence gate signal from a left side of the APD signal to a right side of the APD signal according to a predetermined step, count, for each shifted coincidence gate signal, the second pulses that are generated through an AND operation on the first pulses and the coincidence gate signal, and record a first delay position of the coincidence gate signal in a case that the counting for the second pulses first goes from non-zero to zero and a second delay position of the coincidence gate signal in a case that the counting for the second pulses first goes from zero to non-zero; and

a delay position determining unit, configured to determine a midpoint between the first delay position and the second delay position as the delay position of the upper spike in the APD signal.

15. The apparatus according to claim 13 , further comprising:

a discrimination threshold determining unit, configured to determine the discrimination threshold based on a spike in an avalanche section adjacent to the lower spike in the APD signal under the condition that no avalanche occurs.

16. The apparatus according to claim 15 , wherein the discrimination threshold determining unit is further configured to adjust the pulse width of the coincidence gate signal to be equal to a duration of the avalanche section under the condition that no avalanche occurs, gradually decrease the discrimination threshold from an upper portion of the APD signal to a lower portion of the APD signal according to a predetermined step, and count, for each decreased discrimination threshold, the second pulse that are generated through an AND operation on the first pulses that are generated by a partial signal, exceeding the discrimination threshold, in the APD signal that is located in the avalanche section and the coincidence gate signal until the counting for the second pulses goes from non-zero to zero.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 18, 2024
From: CHEN, LIUPING; FAN, YONGSHENG; TONG, LITING; SHE, XIANGSHENG; LI, NAN; WANG, QIBING; WAN, XIANGKUI
To: QUDOOR TECHNOLOGIES INC.
Reel/Frame 066486/0926 →
Priority Claims (1)
CN 202110945841.X · Aug 18, 2021 · national
Continuity (1)
Related Publication 20240377251A1 · Nov 14, 2024
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