IP Library › Granted Patent US 12,546,848
Granted Patent B2
US 12,546,848 · App. 17/910,863 · Granted Feb 10, 2026

Hyper-accurate object-positioning system and method of self-localization using same

Inventors: Matthew William Lowe (Calgary, CA); Guojiang Gao (Calgary, CA); Chris Leskiw (Calgary, CA)
Assignee: ZEROKEY INC.
G01S5/0273G01S5/02213G01S5/02585
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Quick Facts
Patent No.
US 12,546,848
App. No.
17/910,863
Granted
Feb 10, 2026
Kind
B2
Abstract

An object-positioning system has a plurality of reference devices, one or more target devices at unknown positions and in communication with the plurality of reference devices via one or more wireless signal sets, at least one processing unit; and one or more signal-retransmission devices each in communication with at least a subset of the plurality of reference devices, at least a subset of the one or more target devices, and at least a subset of the at least one processing unit for populating object-positioning related data therebetween. The at least one processing unit is configured for: for each of the one or more target devices, determining the distance between the target device and each of the plurality of reference devices based on the wireless signal set communicated between said reference and target devices, and determining the position of said target device based on the determined distances.

Claims (26)

1 . A positioning system comprising:

a plurality of reference nodes at unknown positions;

one or more target nodes at unknown positions;

at least one processing unit; and

one or more signal-retransmission nodes each for communication with at least a subset of the plurality of reference nodes, at least a subset of the one or more target nodes, and at least a subset of the at least one processing unit for transmitting positioning related data therebetween;

wherein the plurality of reference nodes and the one or more target nodes are configured for communication with each other via one or more wireless signal sets;

wherein the positioning related data comprises information of the one or more wireless signal sets;

wherein the at least one processing unit is configured for:

collecting positioning related data from the one or more signal-retransmission nodes, and

determining the distances between the plurality of reference nodes and the distance between the target nodes and the plurality of reference nodes, based on the information of the one or more wireless signal sets, and

determining the positions of the plurality of reference nodes and the one or more target nodes based on the determined distances.

2 . The object-positioning system of claim 1 further comprising:

one or more gateway nodes for communication with at least a subset of the plurality of reference nodes, at least a subset of the signal-retransmission nodes, and the at least one processing unit for populating the object-positioning related data therebetween.

3 . An object-positioning system comprising:

a plurality of reference nodes having a coordinate system associated therewith, the plurality of reference nodes located at an unknown positions in said coordinate system;

one or more target nodes at unknown positions in said coordinate system;

at least one processing unit; and

one or more signal-retransmission nodes each for communication with at least a subset of the plurality of reference nodes, at least a subset of the one or more target nodes, and at least a subset of the at least one processing unit for populating object-positioning related data therebetween;

wherein the plurality of reference nodes and the one or more target nodes are configured for communication with each other via one or more wireless signal sets, each wireless signal set comprising at least a first-speed signal having a first transmission speed and a second-speed signal having a second transmission speed, and the first transmission speed being higher than the second transmission speed;

wherein the object-positioning related data comprises information of the one or more wireless signal sets;

wherein the at least one processing unit is configured for:

collecting object-positioning related data from the one or more signal-retransmission nodes,

determining the distances between the plurality of reference nodes and the distance between the target nodes and the plurality of reference nodes, based on the time difference, obtained from the information of the one or more wireless signal sets, between the receiving time of the first-speed signal and the receiving time of the second-speed signal of each wireless signal set, and

determining the positions of the plurality of reference nodes and the one or more target nodes based on the determined distances.

4 . The object-positioning system of claim 3 further comprising:

one or more gateway nodes for communication with at least a subset of the plurality of reference nodes, at least a subset of the signal-retransmission nodes, and the at least one processing unit for populating the object-positioning related data therebetween.

Continuity (2)
Provisional Application 62988833 · Mar 12, 2020
Related Publication 20230105698A1 · Apr 6, 2023
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