IP Library Granted Patent US 11,558,712
Granted Patent B2
US 11,558,712 · App. 17/179,821 · Granted Jan 17, 2023

Position information assisted network control

Inventors: Gerard James Hayes (Wake Forest, NC); Elbert Stanford Eskridge, Jr. (Chapel Hill, NC); Koichiro Takamizawa (Silver Spring, MD)
Assignee: SMARTSKY NETWORKS LLC
H04W4/027H04B7/18506H04W4/029H04W4/40H04W4/44H04W4/50H04W24/02H04W36/32H04W64/006H04W72/048H04W88/02H04W88/08
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Quick Facts
Patent No.
US 11,558,712
App. No.
17/179,821
Granted
Jan 17, 2023
Kind
B2
Abstract

A network controller including processing circuitry may be configured to receive dynamic position information indicative of a three dimensional position of at least one mobile communication node, compare fixed position information indicative of fixed geographic locations of respective access points of a network to the dynamic position information to determine a relative position of the at least one mobile communication node relative to at least one of the access points based on the fixed position information and the dynamic position information, and provide network control instructions to at least one network asset based on the relative position.

Claims (31)

1. A network controller comprising processing circuitry configured to:

receive dynamic position information indicative of a three dimensional position of at least one mobile communication node;

compare fixed position information indicative of fixed geographic locations of a plurality of access points of a network to the dynamic position information to determine a relative position of the at least one mobile communication node relative to at least one of the access points based on the fixed position information and the dynamic position information; and

provide network control instructions to both the at least one mobile communication node and the at least one of the access points based on the relative position.

2. The network controller of claim 1 , wherein the dynamic position information comprises latitude and longitude coordinates and altitude of an aircraft, and wherein the dynamic position information comprises speed and bearing of an aircraft.

3. The network controller of claim 1 , wherein the network control instructions include changes to coding or modulation schemes.

4. The network controller of claim 1 , wherein providing network control instructions comprises instructing the at least one network asset to power down or to reduce transmission power.

5. The network controller of claim 1 , wherein providing network control instructions comprises instructing both the at least one mobile communication node and the at least one of the access points to adjust its antenna radiation characteristics.

6. The network controller of claim 1 , wherein providing network control instructions comprises instructing an adjacent access point to the at least one of the access points to avoid transmission at a frequency or channel employed by the at least one mobile communication node.

7. The network controller of claim 1 , wherein the network controller is further configured to receive information indicative of network loading, and wherein providing the network control instruction comprises providing the network control instruction based on the relative position and the information indicative of network loading.

8. The network controller of claim 7 , wherein providing network control instructions comprises instructing the at least one of the access points to conduct a handover of the at least one mobile communication node to a different access point based on a change in altitude of the at least one of the access points at a given location.

9. The network controller of claim 7 , further comprising receiving information indicative of network interference, and wherein providing the network control instruction comprises providing the network control instruction based on the relative position and the information indicative of network interference.

10. The network controller of claim 9 , wherein providing network control instructions comprises instructing the at least one of the access points to reduce transmission power or to adjust its antenna radiation characteristics.

11. The network controller of claim 9 , wherein providing the network control instruction comprises instructing the at least one of the access points to secure power.

12. The network controller of claim 9 , wherein providing the network control instruction comprises instructing the at least one of the access points to alter its encryption algorithms.

13. The network controller of claim 1 , wherein providing network control instructions comprises instructing the least one mobile communication node to communicate with an access point associated with a specific identifier, the access point associated with the specific identifier being determined on the basis of information indicative of network interference.

14. The network controller of claim 1 , wherein providing network control instructions comprises instructing the least one mobile communication node to communicate with an access point associated with a specific identifier, the access point associated with the specific identifier being determined on the basis of information indicative of network loading.

15. The network controller of claim 1 , wherein the relative position comprises an expected relative position corresponding to a future mobile communication node position.

16. A network controller comprising processing circuitry configured to:

receive dynamic position information indicative of a three dimensional position of at least one mobile communication node;

compare fixed position information indicative of fixed geographic locations of a plurality of access points of a network to the dynamic position information to determine a relative position of the at least one mobile communication node relative to at least one of the access points based on the fixed position information and the dynamic position information; and

provide network control instructions to either the at least one mobile communication node or the at least one of the access points based on the relative position,

wherein providing network control instructions comprises providing anticipatory control instructions predictive of a future change in status of the at least one mobile communication node or the at least one of the access points.

17. The network controller of claim 16 , wherein the network controller is configured to classify access points in groups based on proximity to a route of an aircraft, and wherein respective common network control instructions are provided to the groups.

18. The network controller of claim 16 , wherein the network controller stores parametric guidelines defining at least interference related parameters or load balancing parameters to act as triggers for causing the network controller to issue the network control instructions.

19. A network controller comprising processing circuitry configured to:

receive dynamic position information indicative of a three dimensional position of at least one mobile communication node;

compare fixed position information indicative of fixed geographic locations of a plurality of access points of a network to the dynamic position information to determine a relative position of the at least one mobile communication node relative to each of the access points based on the fixed position information and the dynamic position information;

ranking each of the access points based on a current distance or an estimated future distance from the at least one mobile communication node; and

provide network control instructions to either the at least one mobile communication node or one or more of the access points based on the relative position or the ranking.

20. The network controller of claim 19 , wherein providing network control instructions comprises providing anticipatory control instructions predictive of a future change in status of the at least one mobile communication node relative to the one or more of the access points.

Assignments (3)
SECURITY INTEREST Recorded May 9, 2023
From: SMARTSKY NETWORKS, LLC
To: WILMINGTON SAVINGS FUND SOCIETY, FSB, AS AGENT
Reel/Frame 063779/0317 →
CORRECTIVE ASSIGNMENT TO CORRECT THE THE SPELLING OF THE 3RD INVENTOR'S NAME PREVIOUSLY RECORDED AT REEL: 056196 FRAME: 0180. ASSIGNOR(S) HEREBY CONFIRMS THE ASSIGNMENT. Recorded Oct 14, 2022
From: HAYES, GERARD JAMES; TAKAMIZAWA, KOICHIRO; ESKRIDGE, ELBERT STANFORD, JR.
To: SMARTSKY NETWORKS LLC
Reel/Frame 061681/0243 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 11, 2021
From: HAYES, GERARD JAMES; TAKAMIZAWA, KOICHIRO; ESKRIDGE, ELBERT STANFOR, JR.
To: SMARTSKY NETWORKS LLC
Reel/Frame 056196/0180 →
Continuity (8)
Continuation 16903476 · Jun 17, 2020
Continuation 16596357 · Oct 8, 2019
Continuation 16237839 · Jan 2, 2019
Continuation 15867013 · Jan 10, 2018
Continuation 14875956 · Oct 6, 2015
Continuation PCTUS2014031154 · Mar 19, 2014
Continuation 13859027 · Apr 9, 2013
Related Publication 20210176599A1 · Jun 10, 2021
Cited By (1)
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