IP Library Granted Patent US 10,522,921
Granted Patent B2
US 10,522,921 · App. 15/852,294 · Granted Dec 31, 2019

Multi-antenna control in wireless user devices

Inventors: Akin Ozozlu (McLean, VA); Nagi A. Mansour (Arlington, VA); Kevin Almon Hart (Oakton, VA); Noman Muzaffar Alam (Chantilly, VA)
Assignee: Spring Communications Company L.P.
H01Q21/24H01Q21/062H01Q21/065H04B7/0608H04B7/0691H04B7/0693H04B7/0805H04B7/0877H04W52/0277H04W76/14H04W92/18H04W4/70H04W52/0232Y02D70/444
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Quick Facts
Patent No.
US 10,522,921
App. No.
15/852,294
Granted
Dec 31, 2019
Kind
B2
Abstract

A battery-powered wireless communication device has internal antennas. In the wireless communication device, transceiver circuitry wirelessly receives external antenna data that indicates on/off status, reserve battery power, and geometric earth-orientation for the individual antennas in a different wireless communication device. Baseband circuitry determines internal antenna data that indicates the on/off status, reserve battery power, and geometric earth-orientation for the internal antennas. The baseband circuitry executes a user application that generates and consumes user data. The baseband circuitry selects a set of the internal antennas to serve the user application based on the internal antenna data and the external antenna data. The transceiver circuitry wirelessly exchanges the user data over the selected set of the internal antennas.

Claims (61)

1. A method of operating a battery-powered wireless communication device that has internal antennas, the method comprising:

a battery supplying power to baseband circuitry and transceiver circuitry;

the baseband circuitry executing a user application that generates and consumes user data;

the transceiver circuitry wirelessly receiving external antenna data that indicates on/off status, reserve battery power, and geometric earth-orientation for individual external antennas in an external wireless communication device;

the baseband circuitry determining internal antenna data that indicates on/off status, reserve battery power, and geometric earth-orientation for individual ones of the internal antennas;

the baseband circuitry selecting antennas based on the internal antenna data and the external antenna data and responsively transferring communication instructions to the transceiver circuitry; and

the transceiver circuitry wirelessly transmitting the internal antenna data and wirelessly exchanging the user data over the selected internal antennas responsive to the communication instructions.

2. The method of claim 1 wherein:

the baseband circuitry determining the internal antenna data comprises determining transmitting on/off status for the individual ones of the internal antennas;

the baseband circuitry selecting the internal antennas comprises selecting transmitting ones of the internal antennas; and

the transceiver circuitry wirelessly exchanging the user data comprises wirelessly transmitting some of user data over the selected transmitting internal antennas responsive to the communication instructions.

3. The method of claim 1 wherein:

the baseband circuitry determining the internal antenna data comprises determining receiving on/off status for the individual ones of the internal antennas;

the baseband circuitry selecting the internal antennas comprises selecting receiving ones of the internal antennas; and

the transceiver circuitry wirelessly exchanging the user data comprises wirelessly receiving some of user data over the selected receiving internal antennas responsive to the communication instructions.

4. The method of claim 1 wherein:

the baseband circuitry determining the internal antenna data comprises determining transmitting on/off status for the individual ones of the internal antennas;

the baseband circuitry selecting the internal antennas comprises reducing transmitting ones of the internal antennas responsive to a low amount of the reserve power; and

the transceiver circuitry wirelessly exchanging the user data comprises wirelessly transmitting some of user data over the selected transmitting internal antennas responsive to the communication instructions.

5. The method of claim 1 wherein:

the baseband circuitry determining the internal antenna data comprises determining user applications and transmitting on/off status for the individual ones of the internal antennas;

the baseband circuitry selecting the internal antennas comprises reducing transmitting ones of the internal antennas responsive to the user application being download-centric; and

the transceiver circuitry wirelessly exchanging the user data comprises wirelessly transmitting some of user data over the selected transmitting internal antennas responsive to the communication instructions.

6. The method of claim 1 wherein:

the baseband circuitry determining the internal antenna data comprises determining user applications and receiving on/off status for the individual ones of the internal antennas;

the baseband circuitry selecting the internal antennas comprises increasing receiving ones of the internal antennas responsive to a download-centric one of the user applications; and

the transceiver circuitry wirelessly exchanging the user data comprises wirelessly receiving some of user data over the selected receiving internal antennas responsive to the communication instructions.

7. The method of claim 1 wherein the external wireless communication device comprises another battery-powered wireless communication device and the wireless user data exchange comprises direct Device-to-Device (D2D) communications.

8. The method of claim 1 wherein the geometric earth-orientation for the individual ones of the internal antennas comprises antenna azimuth.

9. The method of claim 1 wherein the geometric earth-orientation for the individual ones of the internal antennas comprises antenna angle.

10. The method of claim 1 wherein the geometric earth-orientation for the individual ones of the internal antennas comprises geographic location.

11. A battery-powered wireless communication device that has internal antennas, the wireless communication device comprising:

a battery configured to supply power to baseband circuitry and transceiver circuitry;

the baseband circuitry configured to execute a user application that generates and consumes user data;

the transceiver circuitry configured to wirelessly receive external antenna data that indicates on/off status, reserve battery power, and geometric earth-orientation for individual external antennas in an external wireless communication device;

the baseband circuitry configured to determine internal antenna data that indicates on/off status, reserve battery power, and geometric earth-orientation for individual ones of the internal antennas, and to select a set of the internal antennas based on the internal antenna data and the external antenna data and responsively transfer communication instructions to the transceiver circuitry; and

the transceiver circuitry configured to wirelessly transmit the internal antenna data and wirelessly exchange the user data over the selected set of the internal antennas responsive to the communication instructions.

12. The battery-powered wireless communication device of claim 11 wherein:

the baseband circuitry is configured to determine transmitting on/off status for the individual ones of the internal antennas;

the baseband circuitry is configured to select transmitting ones of the internal antennas; and

the transceiver circuitry is configured to wirelessly transmit some of user data over the selected transmitting internal antennas responsive to the communication instructions.

13. The battery-powered wireless communication device of claim 11 wherein:

the baseband circuitry is configured to determine receiving on/off status for the individual ones of the internal antennas;

the baseband circuitry is configured to select receiving ones of the internal antennas; and

the transceiver circuitry is configured to wirelessly receive some of user data over the selected receiving internal antennas responsive to the communication instructions.

14. The battery-powered wireless communication device of claim 11 wherein:

the baseband circuitry is configured to determine transmitting on/off status for the individual ones of the internal antennas;

the baseband circuitry is configured to reduce transmitting ones of the internal antennas responsive to a low amount of the reserve power; and

the transceiver circuitry is configured to wirelessly transmit some of user data over the selected transmitting internal antennas responsive to the communication instructions.

15. The battery-powered wireless communication device of claim 11 wherein:

the baseband circuitry is configured to determine transmitting on/off status for the individual ones of the internal antennas;

the baseband circuitry is configured to reduce transmitting ones of the internal antennas responsive to the user application being download-centric; and

the transceiver circuitry is configured to wirelessly transmit some of user data over the selected transmitting internal antennas responsive to the communication instructions.

16. The battery-powered wireless communication device of claim 11 wherein:

the baseband circuitry is configured to determine receiving on/off status for the individual ones of the internal antennas;

the baseband circuitry is configured to increase receiving ones of the internal antennas responsive to the user application being download-centric; and

the transceiver circuitry is configured to wirelessly receive some of user data over the selected receiving internal antennas responsive to the communication instructions.

17. The battery-powered wireless communication device of claim 11 wherein the external wireless communication device comprises another battery-powered wireless communication device and the wireless user data exchange comprises direct Device-to-Device (D2D) communications.

18. The battery-powered wireless communication device of claim 11 wherein the geometric earth-orientation for the individual ones of the internal antennas comprises antenna azimuth.

19. The battery-powered wireless communication device of claim 11 wherein the geometric earth-orientation for the individual ones of the internal antennas comprises antenna angle.

20. The battery-powered wireless communication device of claim 11 wherein the geometric earth-orientation for the individual ones of the internal antennas comprises geographic location.

Assignments (4)
RELEASE OF SECURITY INTEREST Recorded Aug 23, 2022
From: DEUTSCHE BANK TRUST COMPANY AMERICAS
To: IBSV LLC; LAYER3 TV, LLC; PUSHSPRING, LLC; T-MOBILE CENTRAL LLC; T-MOBILE USA, INC.; ASSURANCE WIRELESS USA, L.P.; BOOST WORLDWIDE, LLC; CLEARWIRE COMMUNICATIONS LLC; CLEARWIRE IP HOLDINGS LLC; SPRINTCOM LLC; SPRINT COMMUNICATIONS COMPANY L.P.; SPRINT INTERNATIONAL INCORPORATED; SPRINT SPECTRUM LLC
Reel/Frame 062595/0001 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 4, 2021
From: SPRINT COMMUNICATIONS COMPANY L.P.
To: T-MOBILE INNOVATIONS LLC
Reel/Frame 055604/0001 →
SECURITY AGREEMENT Recorded Apr 2, 2020
From: T-MOBILE USA, INC.; ISBV LLC; T-MOBILE CENTRAL LLC; LAYER3 TV, INC.; PUSHSPRING, INC.; BOOST WORLDWIDE, LLC; CLEARWIRE COMMUNICATIONS LLC; CLEARWIRE IP HOLDINGS LLC; CLEARWIRE LEGACY LLC; SPRINT COMMUNICATIONS COMPANY L.P.; SPRINT INTERNATIONAL INCORPORATED; SPRINT SPECTRUM L.P.; ASSURANCE WIRELESS USA, L.P.
To: DEUTSCHE BANK TRUST COMPANY AMERICAS
Reel/Frame 053182/0001 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 22, 2017
From: OZOZLU, AKIN; MANSOUR, NAGI A.; HART, KEVIN ALMON; ALAM, NOMAN MUZAFFAR
To: SPRINT COMMUNICATIONS COMPANY L.P.
Reel/Frame 044470/0589 →
Continuity (1)
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