IP Library Granted Patent US 10,721,593
Granted Patent B2
US 10,721,593 · App. 16/596,357 · Granted Jul 21, 2020

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 10,721,593
App. No.
16/596,357
Granted
Jul 21, 2020
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 (26)

1. A network controller comprising processing circuitry configured to:

determine predicted future positions of a mobile communication node based on dynamic position information indicative of a three dimensional position of the mobile communication node moving between cells of an air to ground network;

determine, for predetermined periods of time corresponding to the predicted future positions, selected ones of the cells that are expected to be within communication range of the mobile communication node; and

provide network control instructions to some of the selected ones of the cells to performing antenna beamsteering toward the mobile communication node responsive to arrival of the respective ones of the predetermined periods of time.

2. The network controller of claim 1 , wherein providing the network control instructions further comprises instructing the selected ones of the cells to adjust antenna radiation characteristics at the respective ones of the predetermined periods of time.

3. The network controller of claim 2 , wherein the processing circuitry is further configured to provide instructions to others of the selected ones of the cells to reduce power during the respective ones of the predetermined periods of time to reduce interference.

4. The network controller of claim 1 , wherein the processing circuitry is further configured to provide instructions to the some of the selected ones of the cells to increase power during the respective ones of the predetermined periods of time to facilitate connectivity to the mobile communication node.

5. The network controller of claim 1 , wherein the processing circuitry is further configured to classify the selected ones of the cells in groups based on a degree to which a route of the mobile communication node passes through each of the selected ones of the cells, and wherein respective network control instructions are provided to each of the selected ones of the cells in a respective one of the groups.

6. The network controller of claim 1 , further comprising providing instructions to adjust antenna radiation characteristics of the mobile communication node to perform antenna beamsteering from the mobile communication node.

7. The network controller of claim 1 , wherein providing the network control instructions comprises providing, for each of the respective ones of the predetermined periods of time, a list of cell identifiers for which the mobile communication node is directed to listen to facilitate a handover to a corresponding cell in the list of cell identifiers at a given time in the future.

8. The network controller of claim 1 , wherein providing the network control instructions comprises providing a route communication plan defining a channel or frequency expected to be detected at a given time in the future.

9. The network controller of claim 1 , wherein providing the network control instructions comprises providing a route communication plan defining a best cell at each of the respective ones of the predetermined periods of time for a duration of a route of the mobile communication node.

10. The network controller of claim 1 , wherein providing the network control instructions comprises providing a route communication plan defining a best cell at each of a plurality of future locations of the mobile communication node for a duration of a route of the mobile communication node.

11. The network controller of claim 1 , wherein providing the network control instructions comprises providing parametric guidelines defining a list of parameters and corresponding actions to be taken when the parameters are experienced.

12. The network controller of claim 1 , wherein providing the network control instructions comprises providing parametric guidelines defining a list of parameters and corresponding actions to be taken when the parameters are expected to occur at a future time.

13. The network controller of claim 1 , wherein the processing circuitry is further configured to provide instructions to non-selected cells to secure power.

14. The network controller of claim 1 , wherein providing the network control instruction comprises instructing the selected ones of the cells to alter encryption algorithms.

15. The network controller of claim 1 , wherein providing the network control instruction comprises instructing changes to coding or modulation schemes.

16. A system comprising a plurality of cells of an air to ground network, a mobile communication node, and a network controller comprising processing circuitry, the processing circuitry being configured to:

determine predicted future positions of a mobile communication node based on dynamic position information indicative of a three dimensional position of the mobile communication node moving between cells of an air to ground network;

determine, for predetermined periods of time corresponding to the predicted future positions, selected ones of the cells that are expected to be within communication range of the mobile communication node; and

provide network control instructions including providing provide a route communication plan defining a best cell for a duration of a route of the mobile communication node.

17. The system of claim 16 , wherein providing the route communication plan defines a channel or frequency expected to be detected at a given time in the future.

18. The system of claim 16 , wherein defining the best cell comprises defining the best cell at each of the respective ones of the predetermined periods of time for the duration of the route of the mobile communication node.

19. The system of claim 16 , wherein defining the best cell comprises defining the best cell at each of a plurality of future locations of the mobile communication node for the duration of the route of the mobile communication node.

20. The system of claim 16 , wherein providing the network control instructions comprises providing adjusting antenna radiation characteristics by performing antenna beamsteering toward the mobile communication node.

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 Oct 10, 2019
From: HAYES, GERARD JAMES; ESKRIDGE, ELBERT STANFORD, JR; TAKAMIZAWA, KOICHIRO
To: SMARTSKY NETWORKS LLC
Reel/Frame 050702/0538 →
Continuity (6)
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 20200045504A1 · Feb 6, 2020