IP Library Granted Patent US 11,415,704
Granted Patent B2
US 11,415,704 · App. 16/975,813 · Granted Aug 16, 2022

Optimized position information assisted beamforming

Inventors: Gerard James Hayes (Wake Forest, NC); Koichiro Takamizawa (Silver Spring, MD); Douglas Hyslop (Vienna, VA)
Assignee: SMARTSKY NETWORKS, LLC
G01S19/22G01S19/36G01S19/396H04B7/18506
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Quick Facts
Patent No.
US 11,415,704
App. No.
16/975,813
Granted
Aug 16, 2022
Kind
B2
Abstract

A global positioning system (GPS) receiver may include an antenna configured to receive GPS signals from GPS satellites, a radio frequency (RF) front end configured to pre-process signals received by the antenna, a demodulator/converter configured to perform demodulation and analog-to-digital conversion of output signals received from the RF front end, a clock configured to provide a consistent clock signal, and a digital signal processor configured to receive the clock signal and make time and code measurements associated with determining a location of the GPS receiver based on the signals received by the antenna. The GPS receiver may be configured to eliminate reflected or indirect signals from the time and code measurements.

Claims (46)

1. A global positioning system (GPS) receiver comprising:

an antenna configured to receive GPS signals from GPS satellites;

a radio frequency (RF) front end configured to pre-process signals received by the antenna;

a demodulator/converter configured to perform demodulation and analog-to-digital conversion of output signals received from the RF front end;

a clock configured to provide a consistent clock signal;

a digital signal processor configured to receive the clock signal and make time and code measurements associated with determining a location of the GPS receiver based on the signals received by the antenna, and

an optimization module in communication with the digital signal processor,

wherein the GPS receiver is configured to eliminate reflected or indirect signals from the time and code measurements, and

wherein the optimization module is configured to alter a configuration of the antenna or operation of the digital signal processor to provide optimization of determining a location of the GPS receiver by causing elimination of the reflected or indirect signals.

2. The GPS receiver of claim 1 , wherein the antenna is a directive antenna configured to form a null in a direction of the reflected or indirect signals.

3. The GPS receiver of claim 2 , wherein the GPS receiver is disposed on an aircraft, and wherein the null is formed at a nadir relative to the aircraft.

4. The GPS receiver of claim 1 , wherein the optimization module is configured to determine at least one satellite as a source of the reflected or indirect signals and direct configuration of the antenna to steer a null toward the source.

5. The GPS receiver of claim 1 , wherein the optimization module is configured to determine at least one satellite as a source of the reflected or indirect signals and remove the reflected or indirect signals coming from the source from a set of signals being processed by the digital signal processor.

6. The GPS receiver of claim 1 , wherein the optimization module is configured to determine a qualitative assessment of GPS signals received from each of the satellites.

7. The GPS receiver of claim 6 , wherein the optimization module is configured to, based on the qualitative assessment, identify at least one satellite as a source of reflected or indirect signals.

8. The GPS receiver of claim 1 , wherein the optimization module is configured to generate a GPS optimization map that correlates location with GPS signal quality for at least one satellite at a given time.

9. The GPS receiver of claim 1 , wherein the optimization module is configured to generate a GPS optimization map that correlates location with GPS fix quality at a given time.

10. The GPS receiver of claim 1 , wherein the optimization module is configured to reference a GPS optimization map that correlates location with signal or fix quality at a given time to determine one or more satellites that are likely to be a source of the reflected or indirect signals.

11. The GPS receiver of claim 1 , wherein the optimization module is configured to generate a GPS optimization map that graphically displays at least one area in which a GPS signal from at least one satellite is a reflected or indirect signal.

12. The GPS receiver of claim 11 , wherein the at least one area represents an area where the GPS signal from the at least one satellite is currently the reflected or indirect signal, and the GPS optimization map further graphically displays at least one additional area in which the GPS signal is expected to be reflected or indirect if received by the GPS receiver at a future time.

13. The GPS receiver of claim 1 , wherein the GPS receiver is configured to eliminate reflected or indirect signals by blocking signals proximate to a nadir relative to the aircraft.

14. The GPS receiver of claim 1 , wherein the GPS receiver is configured to eliminate reflected or indirect signals by being configured to receive GPS signals only from satellites disposed toward a horizon relative to the aircraft.

15. A global positioning system (GPS) receiver comprising:

an antenna configured to receive GPS signals from GPS satellites;

a radio frequency (RF) front end configured to pre-process signals received by the antenna;

a demodulator/converter configured to perform demodulation and analog-to-digital conversion of output signals received from the RF front end;

a clock configured to provide a consistent clock signal; and

a digital signal processor configured to receive the clock signal and make time and code measurements associated with determining a location of the GPS receiver based on the signals received by the antenna,

wherein the GPS receiver is configured to eliminate reflected or indirect signals from the time and code measurements,

wherein the antenna is a directive antenna configured to form a null in a direction of the reflected or indirect signals,

wherein the GPS receiver is disposed on an aircraft, and wherein the null is formed at a nadir relative to the aircraft, and

wherein the directive antenna is formed at a bottom portion of a fuselage or wing of the aircraft, and wherein the directive antenna is configured to receive signals originating near a horizon in any direction, and reject signals originating near the nadir.

16. The GPS receiver of claim 15 , further comprising an optimization module in communication with the digital signal processor,

wherein the optimization module is configured to alter a configuration of the antenna or operation of the digital signal processor to provide optimization of determining a location of the GPS receiver by causing elimination of the reflected or indirect signals.

17. A method of improving global position system (GPS) position determination, the method comprising:

determining an antenna pattern being employed by an antenna configured to receive GPS signals;

determining a current location of a GPS receiver comprising the antenna;

performing signal selection based on the current location;

adjusting the antenna pattern based on the signal selection to receive a selected set of signals; and

performing GPS position determination based on the selected set of signals,

wherein performing signal selection comprises:

performing preliminary GPS position determination using multiple combinations of satellites;

ranking each combination by quality;

ranking each satellite used in the multiple combinations; and

blocking signals from a satellite ranked below a threshold, and

wherein the method further comprises utilizing the ranking of each combination and/or the ranking of each satellite to generate a GPS optimization map.

Assignments (2)
SECURITY INTEREST Recorded May 9, 2023
From: SMARTSKY NETWORKS, LLC
To: WILMINGTON SAVINGS FUND SOCIETY, FSB, AS AGENT
Reel/Frame 063779/0317 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 27, 2020
From: HYSLOP, DOUGLAS; HAYES, GERARD JAMES; TAKAMIZAWA, KOICHIRO
To: SMARTSKY NETWORKS LLC
Reel/Frame 054153/0962 →
Continuity (2)
Provisional Application 62634964 · Feb 26, 2018
Related Publication 20200408923A1 · Dec 31, 2020