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US20210311202A1 - Multi-subset-based detection and mitigation of gnss spoofing - Google Patents

Multi-subset-based detection and mitigation of gnss spoofing
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US20210311202A1
US20210311202A1US17/186,668US202117186668AUS2021311202A1US 20210311202 A1US20210311202 A1US 20210311202A1US 202117186668 AUS202117186668 AUS 202117186668AUS 2021311202 A1US2021311202 A1US 2021311202A1
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satellite
satellites
location
datums
communication
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US17/186,668
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Robert S. Reis
Shmuel Shaffer
Darren Robert Reis
James M. Behmke
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Higher Ground LLC
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Higher Ground LLC
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Assigned to HIGHER GROUND LLCreassignmentHIGHER GROUND LLCASSIGNMENT OF ASSIGNORS INTEREST (SEE DOCUMENT FOR DETAILS).Assignors: BEHMKE, JAMES M., REIS, DARREN ROBERT, REIS, ROBERT S., SHAFFER, SHMUEL
Publication of US20210311202A1publicationCriticalpatent/US20210311202A1/en
Assigned to HIGHER GROUND LLCreassignmentHIGHER GROUND LLCASSIGNMENT OF ASSIGNORS INTEREST (SEE DOCUMENT FOR DETAILS).Assignors: REUSS, DAVID ALEXANDER
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Abstract

According to one or more of the embodiments herein, systems and techniques for multi-subset-based detection and mitigation of Global Navigation Satellite System (GNSS) spoofing are provided. In one embodiment, a method comprises: determining data associated with a distance between an object and each of a plurality of satellites to produce a corresponding plurality of datums; creating a plurality of different subsets of the datums; determining a plurality of possible computed solutions for the object based on the subsets of datums; determining, in response to the plurality of possible computed solutions falling within an acceptable proximity of each other, a trusted computed solution for the object based on the plurality of datums; and initiating, in response to at least one the plurality of possible computed solutions not falling within the acceptable proximity of each other of the plurality of possible computed solutions, one or more mitigation actions.

Description

Claims (29)

What is claimed is:
1. A method, comprising:
determining, by a process, data associated with a distance between an object and each of a plurality of satellites to produce a corresponding plurality of datums;
creating, by the process, a plurality of subsets of datums each having a different combination of datums from the plurality of datums;
determining, by the process, a plurality of possible computed solutions for the object each based respectively on a corresponding one of the plurality of subsets of datums;
determining, by the process, whether the plurality of possible computed solutions fall within an acceptable proximity of each other;
determining, by the process in response to the plurality of possible computed solutions falling within the acceptable proximity of each other, a trusted computed solution for the object based on the plurality of datums between the object and the plurality of satellites; and
initiating, by the process in response to at least one the plurality of possible computed solutions not falling within the acceptable proximity of each other of the plurality of possible computed solutions, one or more mitigation actions.
2. The method as inclaim 1, wherein one of the one or more mitigation actions comprises:
determining one or more specific datums of the plurality of datums between the object and the plurality of satellites that are incorrect datums.
3. The method as inclaim 2, wherein one of the one or more mitigation actions comprises:
excluding the one or more specific datums of the plurality of datums between the object and the plurality of satellites that are incorrect datums from a computed solution determination of the object based on remaining datums of the plurality of datums between the object and the plurality of satellites.
4. The method as inclaim 1, wherein the plurality of datums comprises greater than four datums.
5. The method as inclaim 1, wherein the trusted computed solution for the object is based on all of the plurality of datums between the object and the plurality of satellites.
6. The method as inclaim 1, wherein all of the plurality of datums are determined using a single location determination hardware system.
7. The method as inclaim 6, wherein the single location determination hardware system is a Global Navigation Satellite System (GNSS).
8. The method as inclaim 1, wherein determining the plurality of datums is based on a primary location determination hardware system, and wherein one of the one or more mitigation actions comprises switching from utilization of the primary location determination hardware system to a secondary location determination hardware system for geolocation of the object.
9. The method as inclaim 8, wherein the primary location determination hardware system is based on Global Navigation Satellite System (GNSS) satellites, and wherein the secondary location determination hardware system is based on communication satellites.
10. The method as inclaim 9, wherein the datums are distances to communication satellites that are calculated by echo messages communicated between the communication satellites and the object.
11. The method as inclaim 9, wherein the datums are distances to communication satellites that are calculated by one-way relay messages communicated between the communication satellites and the object.
12. The method as inclaim 1, wherein the process is executed on a device other than the object, wherein the device is in communication with the object to obtain the plurality of datums.
13. The method as inclaim 1, wherein the process is executed on the object, and wherein the object is a mobile device.
14. The method as inclaim 1, wherein one of the one or more mitigation actions comprises determining a weighted average location of the object based on the plurality of datums.
15. The method as inclaim 1, wherein the plurality of datums is based on a plurality of location determination hardware systems.
16. The method as inclaim 1, wherein the plurality of datums is based on one or more location determination hardware systems selected from a group consisting of: the Global Positioning System (GPS), the BeiDou Navigation Satellite System (BDS), the Global Navigation Satellite System (GLONASS), the Galileo Global Navigation Satellite System, echo messages communicated between the communication satellites and the object, and one-way relay messages communicated between the communication satellites and the object.
17. The method as inclaim 1, wherein one of the one or more mitigation actions comprises providing a spoofing alert message.
18. The method as inclaim 1, wherein one of the one or more mitigation actions comprises alerting one or more subordinate devices.
19. The method as inclaim 18, wherein alerting the one or more subordinate devices causes the one or more subordinate devices switch from utilization of a primary location determination hardware system to an alternative location determination hardware system for geolocation of a respective subordinate device of the one or more subordinate devices.
20. The method as inclaim 1, wherein the process is executed on an aircraft, and wherein one of the one or more mitigation actions comprises preventing a drop of cargo from the aircraft.
21. The method as inclaim 20, wherein the cargo is configured to self-navigate during a drop based on a primary location determination hardware system, and wherein the plurality of datums are determined based on the primary location determination hardware system.
22. The method as inclaim 1, wherein the process is executed on an aircraft, and wherein a cargo associated with the aircraft is configured to self-navigate during a drop based on a primary location determination hardware system, and wherein the plurality of datums are determined based on the primary location determination hardware system, and wherein one of the one or more mitigation actions comprises instructing the cargo to utilize an alternative location determination hardware system during a drop from the aircraft.
23. The method as inclaim 1, wherein one of the one or more mitigation actions comprises adjusting one or more communication parameters of a primary location determination hardware system to circumvent spoofing communications of the primary location determination hardware system.
24. The method as inclaim 1, wherein one of the one or more mitigation actions comprises selecting one or more different satellites than the plurality of satellites to circumvent spoofed satellite signals associated with the plurality of satellites.
25. The method as inclaim 1, wherein the acceptable proximity is based on an accuracy error of the plurality of possible computed solutions.
26. The method as inclaim 1, wherein data associated with the distance between the object and each of the plurality of satellites to produce the corresponding plurality of datums is selected from a group consisting of: a computed distance between the object and each of the plurality of satellites; a determined time of flight of a radio signal between the object and each of the plurality of satellites; a computed delay time of a radio signal from each of the plurality of satellites to the object; and a computed time of arrival of a radio signal from each of the plurality of satellites to the object.
27. The method as inclaim 1, wherein the plurality of possible computed solutions for the object each based respectively on a corresponding one of the plurality of subsets of datums are selected from a group consisting of: a plurality of possible locations for the object; and a plurality of possible local times for the object.
28. A tangible, non-transitory, computer-readable medium storing program instructions that cause a computer on a communication device to execute a process, the process comprising:
determining data associated with a distance between an object and each of a plurality of satellites to produce a corresponding plurality of datums;
creating a plurality of subsets of datums each having a different combination of datums from the plurality of datums;
determining a plurality of possible computed solutions for the object each based respectively on a corresponding one of the plurality of subsets of datums;
determining whether the plurality of possible computed solutions fall within an acceptable proximity of each other;
determining, in response to the plurality of possible computed solutions falling within the acceptable proximity of each other, a trusted location of the object based on the plurality of datums between the object and the plurality of satellites; and
initiating, in response to at least one the plurality of possible computed solutions not falling within the acceptable proximity of each other of the plurality of possible computed solutions, one or more mitigation actions.
29. An apparatus, comprising:
a processor configured to execute one or more processes;
a communication interface configured to communicate via one or more satellite antennas associated with the apparatus; and
a memory configured to store a process executable by the processor, the process, when executed, configured to perform a process, comprising:
determining data associated with a distance between an object and each of a plurality of satellites to produce a corresponding plurality of datums;
creating a plurality of subsets of datums each having a different combination of datums from the plurality of datums;
determining a plurality of possible computed solutions for the object each based respectively on a corresponding one of the plurality of subsets of datums;
determining whether the plurality of possible computed solutions fall within an acceptable proximity of each other;
determining, in response to the plurality of possible computed solutions falling within the acceptable proximity of each other, a trusted location of the object based on the plurality of datums between the object and the plurality of satellites; and
initiating, in response to at least one the plurality of possible computed solutions not falling within the acceptable proximity of each other of the plurality of possible computed solutions, one or more mitigation actions.
US17/186,6682020-04-012021-02-26Multi-subset-based detection and mitigation of gnss spoofingAbandonedUS20210311202A1 (en)

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US202063039876P2020-06-162020-06-16
US17/186,668US20210311202A1 (en)2020-04-012021-02-26Multi-subset-based detection and mitigation of gnss spoofing

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US17/186,698Active2041-07-02US11638153B2 (en)2020-04-012021-02-26Interferometry-based satellite location accuracy
US17/186,552Active2042-03-21US11770714B2 (en)2020-04-012021-02-26Satellite echoing for geolocation and mitigation of GNSS denial
US17/186,611Active2042-05-22US11971490B2 (en)2020-04-012021-02-26Multi-system-based detection and mitigation of GNSS spoofing
US17/186,668AbandonedUS20210311202A1 (en)2020-04-012021-02-26Multi-subset-based detection and mitigation of gnss spoofing
US17/186,582Active2041-10-10US11736946B2 (en)2020-04-012021-02-26Satellite relaying for geolocation and mitigation of GNSS denial
US17/186,730ActiveUS11346957B2 (en)2020-04-012021-02-26Trilateration-based satellite location accuracy for improved satellite-based geolocation
US18/130,800AbandonedUS20230262466A1 (en)2020-04-012023-04-04Interferometry-based satellite location accuracy
US18/222,246ActiveUS12282102B2 (en)2020-04-012023-07-14Satellite relaying for geolocation and mitigation of GNSS denial
US18/372,428ActiveUS12032071B2 (en)2020-04-012023-09-25Satellite echoing for geolocation and mitigation of GNSS denial
US18/372,458ActiveUS12025712B2 (en)2020-04-012023-09-25Satellite relaying for geolocation and mitigation of GNSS denial
US18/538,650ActiveUS12146968B2 (en)2020-04-012023-12-13Satellite relaying for geolocation and mitigation of GNSS denial

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US17/186,552Active2042-03-21US11770714B2 (en)2020-04-012021-02-26Satellite echoing for geolocation and mitigation of GNSS denial
US17/186,611Active2042-05-22US11971490B2 (en)2020-04-012021-02-26Multi-system-based detection and mitigation of GNSS spoofing

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US17/186,730ActiveUS11346957B2 (en)2020-04-012021-02-26Trilateration-based satellite location accuracy for improved satellite-based geolocation
US18/130,800AbandonedUS20230262466A1 (en)2020-04-012023-04-04Interferometry-based satellite location accuracy
US18/222,246ActiveUS12282102B2 (en)2020-04-012023-07-14Satellite relaying for geolocation and mitigation of GNSS denial
US18/372,428ActiveUS12032071B2 (en)2020-04-012023-09-25Satellite echoing for geolocation and mitigation of GNSS denial
US18/372,458ActiveUS12025712B2 (en)2020-04-012023-09-25Satellite relaying for geolocation and mitigation of GNSS denial
US18/538,650ActiveUS12146968B2 (en)2020-04-012023-12-13Satellite relaying for geolocation and mitigation of GNSS denial

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