IP Library Granted Patent US 11,664,877
Granted Patent B1
US 11,664,877 · App. 17/592,092 · Granted May 30, 2023

Terrestrial interference correction using hybrid beamforming technology

Inventors: Xiaoyi Wang (Austin, TX); Sunny Sharma (Shoreline, WA)
Assignee: Amazon Technologies, Inc.
H04B7/0857H04B7/043H04B7/0617H04B7/0868
View Patent ↗
Loading inventors, assignments & file history…
Monitor This Case
Get email alerts when status or documents change.
Order Certified Copies
Most orders are placed with the USPTO same day — all within 24 business hours.
Order via The Patent Place →
Pre-filled with this patent's details
Quick Facts
Patent No.
US 11,664,877
App. No.
17/592,092
Granted
May 30, 2023
Kind
B1
Abstract

Technologies directed to correction of terrestrial interference using hybrid beamforming are described. One method includes a first communication device with beamforming circuitry receiving an indication of a first direction towards a second communication device The method further includes determining that orienting a main lobe of an antenna gain pattern of the beamforming circuitry along the first direction results in RF saturation of the beamforming circuitry using first data that indicates a set of directions comprising the first direction and a status of an RF saturation condition corresponding to each of the set of directions. The method further includes using the first data to determine a second direction that is different from the first direction. Orienting the main lobe along the second direction does not result in RF saturation. The method further includes receiving, a first RF signal at a first time with the main lobe oriented in the second direction.

Claims (62)

1. A user terminal (UT), comprising:

an array antenna;

beamforming circuitry coupled to the array antenna;

a processing device coupled to the beamforming circuitry, wherein the processing device:

receives a first radio frequency (RF) signal via the beamforming circuitry at a first time, wherein the beamforming circuitry is configured with a first antenna gain pattern wherein a main lobe is pointed in a first direction;

determines, using the first RF signal, a RF saturation condition of the beamforming circuitry associated with the first direction, wherein the RF saturation condition is associated with a power level that exceeds a dynamic range of the beamforming circuitry, wherein the RF saturation condition occurs as a result of a fixed-service communication device sending a second RF signal that contributes power to the first RF signal;

generates first data indicating a set of directions comprising the first direction and a status of the RF saturation condition corresponding to each of the set of directions;

receives, at a second time after the first time, an indication of the first direction towards a specified position of an artificial satellite;

determines, using the first data, the RF saturation condition of the beamforming circuitry associated with the first direction;

determines, using the first data, a second direction from among the set of directions that results in the beamforming circuitry having a non-saturation condition, wherein the fixed-service communication device is disposed along a third direction, wherein the first direction and the third direction form a first angle, and wherein the second direction and the third direction form a second angle larger than the first angle; and

receives a third RF signal via the beamforming circuitry at a third time, wherein the beamforming circuitry, at the third time, is configured with a second pattern wherein the main lobe is pointed in the second direction.

2. The UT of claim 1 , wherein the beamforming circuitry comprises a set of digital beamforming (DBF) devices, wherein the processing device, to determine the RF saturation condition of the beamforming circuitry associated with the first direction using the first RF signal:

determines, from status data received from each DBF device of the set of DBF devices, a first number of the DBF devices reporting a saturation event associated with the first direction and the first RF signal; and

determines that the first number of the DBF devices meets a threshold number associated with the RF saturation condition.

3. The UT of claim 1 , wherein the beamforming circuitry comprises a physical (PHY) layer, wherein the processing device, to determine the RF saturation condition of the beamforming circuitry associated with the first direction using the first RF signal:

receives signal-interference-noise-ratio (SINR) data from the PHY layer of the beamforming circuitry, wherein the processing device determines the RF saturation condition of the beamforming circuitry associated with the first direction using the first RF signal further using the SINR data.

4. A method, comprising:

receiving, by a first communication device having beamforming circuitry, an indication of a first direction, wherein a second communication device is located along the first direction;

determining, by the first communication device using first data, that orienting a main lobe of an antenna gain pattern of the beamforming circuitry along the first direction results in radio frequency (RF) saturation of the beamforming circuitry, wherein the first data indicates a set of directions and a status of an RF saturation condition corresponding to each of the set of directions;

determining, by the first communication device using the first data, a second direction that is different from the first direction, wherein orienting the main lobe along the second direction does not result in the RF saturation of the beamforming circuitry, wherein the set of directions include the first direction and the second direction; and

receiving, by the first communication device using the beamforming circuitry, a first RF signal at a first time, wherein the main lobe is oriented in the second direction.

5. The method of claim 4 , further comprising, prior to determining the second direction:

causing, by the first communication device, the beamforming circuitry to direct the main lobe along each of the set of directions;

determining, by the first communication device, saturation condition data associated with receipt of a corresponding RF signal for each direction of the set of directions, wherein the saturation condition data indicates a level of RF saturation associated with receiving the corresponding RF signal from each of the set of directions; and

generating, by the first communication device using the saturation condition data, the first data.

6. The method of claim 5 , wherein each of the set of directions indicates an elevation angle and an azimuthal angle each relative to a bearing angle of an array antenna of the first communication device.

7. The method of claim 6 , wherein the first data comprises a matrix with a first dimension representative of the elevation angle, a second dimension representative of the azimuthal angle, and element values each representative of the status of the RF saturation condition associated with a corresponding first angle and a corresponding second angle.

8. The method of claim 4 , further comprising:

receiving, by the first communication device, signal-interference-noise-ratio (SINK) data from a physical (PHY) layer of the beamforming circuitry; and

determining, using the SINR data, that orienting the main lobe along the first direction results in RF saturation of the beamforming circuitry.

9. The method of claim 4 , wherein determining that orienting the main lobe along the first direction results in RF saturation of the beamforming circuitry comprises:

determining, by the first communication device from status data received from the beamforming circuitry, a first number of digital beamforming (DBF) devices of the beamforming circuitry reporting a saturation event; and

determining, by the first communication device, that the first number meets a threshold number associated with the RF saturation condition.

10. The method of claim 4 , wherein orienting the main lobe in the second direction forms a null along a third direction between the first communication device and a third communication device.

11. The method of claim 4 , wherein:

at least a portion of the first RF signal corresponds to a fixed service transmission; and

the second communication device comprises an artificial satellite.

12. The method of claim 4 , wherein the first data is stored in a data structure having key value pairs, wherein a key of each of the key value pairs corresponds to a direction of the set of directions and a value of each of the key value pairs indicates a saturation condition or a non-saturation condition.

13. A first communication device, comprising:

beamforming circuitry coupled to an array antenna;

a memory coupled to the beamforming circuitry; and

a controller coupled to the beamforming circuitry and the memory, wherein the controller:

receives an indication of a first direction towards a second communication device;

determines, using first data, that orienting a main lobe of an antenna gain pattern of the beamforming circuitry along the first direction results in radio frequency (RF) saturation of the beamforming circuitry, wherein the first data indicates a set of directions and a status of an RF saturation condition corresponding to each of the set of directions;

determines, using the first data, a second direction that is different from the first direction, wherein orienting the main lobe along the second direction does not result in the RF saturation of the beamforming circuitry, wherein the set of directions comprises the first direction and the second direction; and

receives, using the beamforming circuitry, a first RF signal at a first time, wherein the main lobe is oriented in the second direction.

14. The first communication device of claim 13 , prior to determining that orienting the main lobe of the antenna gain pattern of the beamforming circuitry along the first direction results in the RF saturation of the beamforming circuitry, the controller:

causes the beamforming circuitry to direct the main lobe along each of the set of directions;

determines saturation condition data associated with receipt of a corresponding RF signal for each direction of the set of directions, wherein the saturation condition data indicates a level of RF saturation associated with receiving the corresponding RF signal from each of the set of directions; and

generates, using the saturation condition data, the first data.

15. The first communication device of claim 13 , wherein each of the set of directions indicates an elevation angle and an azimuthal angle relative to a bearing angle of the array antenna.

16. The first communication device of claim 13 , wherein the controller further:

receives signal-interference-noise-ratio (SINR) data from a physical (PHY) layer of the beamforming circuitry,

determine, using the SINR data, that orienting the main lobe along the first direction results in RF saturation of the beamforming circuitry.

17. The first communication device of claim 14 , wherein the controller further:

determines, from status data received from each DBF device of a set of DBF devices, a first number of the DBF devices reporting a saturation event associated with the first direction; and

determines that the first number meets a threshold number associated with the RF saturation condition.

18. The first communication device of claim 13 , wherein the antenna gain pattern forms a null along a third direction between the first communication device and a fixed service communication device.

19. The first communication device of claim 13 , wherein:

at least a portion of the first RF signal corresponds to a fixed service transmission; and

the second communication device comprises an artificial satellite.

20. The first communication device of claim 13 , wherein the first data is stored in a data structure having key value pairs, wherein a key of each of the key value pairs corresponds to a direction of the set of directions and a value of each of the key value pairs indicates a saturation condition or a non-saturation condition.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 3, 2022
From: WANG, XIAOYI; SHARMA, SUNNY
To: AMAZON TECHNOLOGIES, INC.
Reel/Frame 058880/0401 →
Cited By (1)
US 12,647,863