IP Library › Granted Patent US 12,072,426
Granted Patent B2
US 12,072,426 · App. 17/782,128 · Granted Aug 27, 2024

Time-differenced carrier phase measurement value-based navigation system, and position measurement method

Inventors: Chang Don Kee (Seoul, KR); Junesol Song (Uiwang-si, KR); O Jong Kim (Seoul, KR); Jungbeom Kim (Seoul, KR)
Assignee: Seoul National University R&DB Foundation
G01S19/44G01S19/426G01S19/51
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Quick Facts
Patent No.
US 12,072,426
App. No.
17/782,128
Filed
Jun 2, 2022
Granted
Aug 27, 2024
Kind
B2
Examiner
FAN, BO
Art Unit
3646
USPC
342/352
Abstract

A time-differenced carrier phase (TDCP) measurement value-based navigation system according to one embodiment of the present disclosure comprises: a satellite navigation system information reception unit for acquiring satellite navigation system information including a carrier phase measurement value; an initial position determination unit for determining an initial position of a target on the basis of the satellite navigation system information; a TDCP acquisition unit for acquiring a TDCP measurement value; a relative position determination unit for determining a relative position of the target on the basis of the TDCP measurement value; and an absolute position determination unit for determining an absolute position of the target by accumulating relative positions according to time of the initial position of the target. Therefore, time and expenses required for determining integer ambiguity can be reduced, and precise position of a cm-level error can be measured by using a low-cost satellite navigation system information receiver.

Claims (48)

1. A time-differenced carrier phase (TDCP) measurement-based navigation system, comprising:

a satellite navigation system information reception unit to acquire satellite navigation system information including carrier phase measurement;

an initial position determination unit to determine an initial position of a target based on the satellite navigation system information;

a TDCP acquisition unit to acquire a TDCP measurement by time-differencing the carrier phase measurement between consecutive times;

an integer ambiguity change detection unit to detect a change of integer ambiguity in the carrier phase measurement;

a relative position determination unit to determine a relative position of the target based on the TDCP measurement; and

an absolute position determination unit to determine an absolute position of the target by accumulating the relative position over time from the initial position of the target,

wherein when the change of integer ambiguity in the carrier phase measurement is detected, the relative position determination unit is configured to perform one of exclude the carrier phase measurement and its time-differenced measurement in determining the relative position, and estimate a magnitude of the change of integer ambiguity and compensate the measurement for the corresponding magnitude for use to determine the relative position,

wherein the system determines a position of the target using the TDCP measurement without determining the integer ambiguity.

2. The TDCP measurement-based navigation system according to claim 1 , further comprising:

a confidence level determination unit to determine a confidence level for the determined relative position or an absolute position of the target based on the TDCP measurement.

3. The TDCP measurement-based navigation system according to claim 1 , further comprising:

an additional information reception unit to acquire additional information other than the satellite navigation system information,

wherein the initial position determination unit determines the initial position of the target further based on the additional information.

4. The TDCP measurement-based navigation system according to claim 1 , further comprising:

an additional information reception unit to acquire additional information other than the satellite navigation system information,

wherein the relative position determination unit determines the relative position of the target further based on the additional information.

5. The TDCP measurement-based navigation system according to claim 2 , further comprising:

an additional information reception unit to acquire additional information other than the satellite navigation system information,

wherein the confidence level determination unit determines the confidence level for the relative position or the absolute position of the target further based on the additional information.

6. The TDCP measurement-based navigation system according to claim 1 , further comprising:

an additional information reception unit to acquire additional information other than the satellite navigation system information,

wherein the relative position determination unit estimates a magnitude of the change of integer ambiguity based on the additional information.

7. The TDCP measurement-based navigation system according to claim 6 , wherein the additional information includes at least one of dead rocking (DR) information received from a DR sensor, visual information received from a vision sensor, radio wave positioning information received from a radio wave positioning sensor or correction information received from a reference station.

8. The TDCP measurement-based navigation system according to claim 1 , wherein the satellite navigation system information includes multi-frequency information and multi-constellation information.

9. A time-differenced carrier phase (TDCP) measurement-based navigation system, comprising:

a satellite navigation system information reception unit to acquire satellite navigation system information including carrier phase measurement;

an initial position determination unit to determine an initial position of a target based on the satellite navigation system information;

a TDCP acquisition unit to acquire TDCP measurement by time-differencing the carrier phase measurement between consecutive times;

an integer ambiguity change detection unit to detect a change of integer ambiguity in the carrier phase measurement;

a relative measurement calculation unit to calculate a relative measurement over time based on the TDCP measurement; and

a current position determination unit to determine a current position of the target based on the initial position of the target and the relative measurement accumulated over time,

wherein when the change of integer ambiguity in the carrier phase measurement is detected, the relative measurement calculation unit is configured to perform one of exclude the carrier phase measurement and its time-differenced measurement in determining the relative position, and estimate a magnitude of the change of integer ambiguity and compensate the measurement for the corresponding magnitude for use to determine the relative measurement,

wherein the system determines a position of the target using the TDCP measurement without determining the integer ambiguity.

10. A time-differenced carrier phase (TDCP) measurement-based position measurement method performed by a computer processor, the method comprising:

determining an initial position of a target;

acquiring a TDCP measurement by time-differencing carrier phase measurement received through a satellite navigation system information reception unit between consecutive times;

detecting a change of integer ambiguity in the carrier phase measurement before determining the relative position of the target;

determining a relative position of the target based on the TDCP measurement; and

determining an absolute position of the target by accumulating the relative position of the target over time from the initial position of the target,

wherein when the change of integer ambiguity in the carrier phase measurement is detected, one of the carrier phase measurement and its time-differenced measurement are excluded in determining the relative position of the target and the estimate a magnitude of the change of integer ambiguity and compensate the measurement for the corresponding magnitude,

wherein the method determines a position of the target using the TDCP measurement without determining the integer ambiguity.

11. The TDCP measurement-based position measurement method according to claim 10 , further comprising:

determining a confidence level for the determined relative position or absolute position of the target based on the TDCP measurement.

12. The TDCP measurement-based position measurement method according to claim 11 , further comprising:

acquiring additional information other than the satellite navigation system information,

wherein the additional information includes at least one of DR information received from a dead reckoning (DR) sensor, visual information received from a vision sensor, radio wave positioning information received from a radio wave positioning sensor or correction information received from a reference station.

13. The TDCP measurement-based position measurement method according to claim 12 , wherein each of determining the initial position of the target, determining the relative position of the target, detecting the change of integer ambiguity, determining the confidence level for the relative position or the absolute position of the target, and estimating the magnitude of the change of integer ambiguity is performed further using the additional information.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 3, 2022
From: KEE, CHANG DON; SONG, JUNESOL; KIM, O JONG; KIM, JUNGBEOM
To: SEOUL NATIONAL UNIVERSITY R&DB FOUNDATION
Reel/Frame 060098/0765 →
Priority Claims (1)
KR 10-2019-0159067 · Dec 3, 2019 · national
Continuity (1)
Related Publication 20220397684A1 · Dec 15, 2022