IP Library Granted Patent US 12,335,138
Granted Patent B2
US 12,335,138 · App. 17/990,491 · Granted Jun 17, 2025

Spatial awareness navigation techniques on unmanned aerial vehicles (spatial awareness)

Inventors: Anthony D. Schaefer (Marion, IA); Tj T. Kwon (Marion, IA); James Kleveland (Marion, IA)
Assignee: Rockwell Collins, Inc.
H04L45/42H04L45/02H04L45/123H04L45/32
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Quick Facts
Patent No.
US 12,335,138
App. No.
17/990,491
Granted
Jun 17, 2025
Kind
B2
Abstract

A system may include a transmitter node and a receiver node. Each node may include a communications interface including at least one antenna element and a controller operatively coupled to the communications interface, the controller including one or more processors, wherein the controller has information of own node velocity and own node orientation. Each node may be time synchronized to apply Doppler corrections associated with said node's own motions relative to a common reference frame. The common reference frame may be known to the transmitter node and the receiver node prior to the transmitter node transmitting signals to the receiver node. The receiver node may be an autonomous vehicle. The receiver node may be configured to identify a risk of a potential collision with the transmitter node based on the signals.

Claims (37)

1. A system, comprising:

a transmitter node and a receiver node, wherein each node of the transmitter node and the receiver node comprises:

a communications interface including at least one antenna element; and

a controller operatively coupled to the communications interface, the controller including one or more processors, wherein the controller has information of own node velocity and own node orientation;

wherein each node of the transmitter node and the receiver node are in motion relative to each other,

wherein each node of the transmitter node and the receiver node are time synchronized to apply Doppler corrections associated with said node's own motions relative to a common reference frame,

wherein the common reference frame is known to the transmitter node and the receiver node prior to the transmitter node transmitting signals to the receiver node and prior to the receiver node receiving the signals from the transmitter node,

wherein at least the receiver node is configured to be used on an autonomous vehicle, wherein the receiver node is configured to identify a risk of a potential collision between the receiver node and the transmitter node based on the signals.

2. The system of claim 1 , wherein the receiver node is configured to adjust a flight path based on the signals to reduce the risk of the potential collision.

3. The system of claim 1 , wherein the transmitter node is configured to initiate the transmitting of the signals based on a lack of a default transmitter position information source.

4. The system of claim 1 , wherein the common reference frame is a common inertial reference frame.

5. The system of claim 1 , wherein the receiver node is configured to adjust a receiver frequency of the receiver node according to an own speed and an own velocity direction of the receiver node so as to perform a receiver-side Doppler correction.

6. The system of claim 5 , wherein an amount of adjustment of an adjusted transmit frequency is proportional to a transmitter node velocity projection onto a Doppler null direction, wherein the amount of the adjustment of the receiver frequency is proportional to a receiver node velocity projection onto the Doppler null direction.

7. The system of claim 6 , wherein the receiver node is configured to determine a relative speed between the transmitter node and the receiver node.

8. The system of claim 7 , wherein the receiver node is configured to determine a direction that the transmitter node is in motion and a velocity vector of the transmitter node.

9. The system of claim 8 , wherein a maximum net frequency shift for a Doppler correction by the receiver node occurs when a resultant vector is parallel to the Doppler null direction, wherein the resultant vector is equal to a velocity vector of the receiver node minus the velocity vector of the transmitter node.

10. The system of claim 8 , wherein a minimum net frequency shift for a Doppler correction by the receiver node occurs when a resultant vector is antiparallel to the Doppler null direction, wherein the resultant vector is equal to a velocity vector of the receiver node minus the velocity vector of the transmitter node.

11. The system of claim 8 , wherein a net frequency shift for a Doppler correction by the receiver node is zero when a vector pointing to the receiver node from the transmitter node is parallel to the Doppler null direction.

12. The system of claim 1 , wherein the transmitter node and the receiver node are time synchronized via synchronization bits associated with acquisition.

13. The system of claim 12 , wherein the synchronization bits operate as physical layer overhead.

14. The system of claim 1 , wherein each node of the transmitter node and the receiver node are in motion in three dimensions.

15. The system of claim 1 , wherein each node of the transmitter node and the receiver node are in motion in two dimensions.

16. The system of claim 1 , wherein the system is a mobile ad-hoc network (MANET) comprising the transmitter node and the receiver node.

17. A method, comprising:

providing a transmitter node and a receiver node, wherein each node of the transmitter node and the receiver node are time synchronized, wherein each node of the transmitter node and the receiver node are in motion relative to each other, wherein each node of the transmitter node and the receiver node comprises a communications interface including at least one antenna element, wherein each node of the transmitter node and the receiver node further comprises a controller operatively coupled to the communications interface, the controller including one or more processors, wherein the controller has information of own node velocity and own node orientation;

based at least on the time synchronization, applying, by the transmitter node, Doppler corrections to the transmitter node's own motions relative to a common reference frame; and

based at least on the time synchronization, applying, by the receiver node, Doppler corrections to the receiver node's own motions relative to the common reference frame;

wherein the common reference frame is known to the transmitter node and the receiver node prior to the transmitter node transmitting signals to the receiver node and prior to the receiver node receiving the signals from the transmitter node,

wherein at least the receiver node is configured to be used on an autonomous vehicle,

wherein the receiver node is configured to identify a risk of a potential collision between the receiver node and the transmitter node based on the signals.

18. The method of claim 17 , wherein the transmitter node is configured to initiate the transmitting of the signals based on a lack of a default transmitter position information source.

19. The method of claim 17 , wherein the receiver node is configured to adjust a flight path based on the signals to reduce the risk of the potential collision.

20. The method of claim 19 , further comprising:

adjusting, by the receiver node, a receiver frequency of the receiver node according to an own speed and an own velocity direction of the receiver node so as to perform a receiver-side Doppler correction;

determining, by the receiver node, a relative speed between the transmitter node and the receiver node; and

determining, by the receiver node, a direction that the transmitter node is in motion and a velocity vector of the transmitter node,

wherein an amount of adjustment of an adjusted transmit frequency is proportional to a transmitter node velocity projection onto a Doppler null direction, wherein the amount of the adjustment of the receiver frequency is proportional to a receiver node velocity projection onto the Doppler null direction.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 18, 2022
From: SCHAEFER, ANTHONY D.; KWON, TJ T.; KLEVELAND, JAMES
To: ROCKWELL COLLINS, INC.
Reel/Frame 061830/0591 →
Continuity (18)
Continuation In Part 17957881 · Sep 30, 2022
Continuation In Part 17941907 · Sep 9, 2022
Continuation In Part 17940898 · Sep 8, 2022
Continuation In Part 17857920 · Jul 5, 2022
Continuation In Part 17857920 · Jul 5, 2022
Continuation In Part 17846625 · Jun 22, 2022
Continuation In Part PCTUS2022024653 · Apr 13, 2022
Continuation In Part 17541703 · Dec 3, 2021
Continuation In Part 17534061 · Nov 23, 2021
Continuation In Part 17408156 · Aug 20, 2021
Continuation 17233107 · Apr 16, 2021
Continuation In Part 17233107 · Apr 16, 2021
Continuation In Part 17079175 · Oct 23, 2020
Continuation In Part 17020231 · Sep 14, 2020
Continuation In Part 16987671 · Aug 7, 2020
Continuation In Part 16698230 · Nov 27, 2019
Provisional Application 63344445 · May 20, 2022
Related Publication 20240106742A1 · Mar 28, 2024
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