IP Library › Granted Patent US 10,558,823
Granted Patent B2
US 10,558,823 · App. 16/273,877 · Granted Feb 11, 2020

Systems and methods for controlling data exposure using artificial-intelligence-based modeling

Inventors: Kristopher Paul Schroeder (Falls Church, VA); Timothy Ryan Underwood (Burke, VA)
Assignee: Grey Market Labs, PBC
G06F21/6263G06N20/20
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Quick Facts
Patent No.
US 10,558,823
App. No.
16/273,877
Granted
Feb 11, 2020
Kind
B2
Abstract

Systems and methods for controlling the exposure of data privacy elements are provided to generate an artificial profile model. The artificial profile model may include a constraint for generating new artificial profiles. A signal may be received indicating that a computing device is requesting access to a network location. One or more data privacy elements associated with the computing device can be detected. An artificial profile can be determined for the computing device. The artificial profile may be usable to identify the computing device. The one or more data privacy elements may be automatically modified according to the constraint included in the artificial profile model. The method may include generating a new artificial profile for the computing device. The new artificial profile may include the modified one or more data privacy elements. The new artificial profile may mask the computing device from being identified.

Claims (53)

1. A computer-implemented method, comprising:

identifying, at a platform-secured network element between a computing device and a gateway device, a set of data privacy elements, wherein a data privacy element characterizes a feature of a computing device, and wherein a data privacy element is detectable by a network host;

generating an artificial profile model, wherein the artificial profile model includes the set of data privacy elements, wherein the artificial profile model defines a relationship, and wherein a relationship can be associated with one or more constraints;

receiving a signal indicating that a computing device is requesting access to a network location;

detecting one or more data privacy elements associated with the computing device request to access the network location;

determining an artificial profile for the computing device, wherein the artificial profile includes the one or more data privacy elements, and wherein the artificial profile is usable to identify the computing device;

modifying the one or more data privacy elements, wherein the one or more data privacy elements are modified according to a constraint associated with the relationship defined by the artificial profile model; and

generating a new artificial profile for the computing device, wherein the new artificial profile includes the modified one or more data privacy elements, and wherein the new artificial profile masks the computing device from being identified.

2. The computer-implemented method of claim 1 , wherein the computing device is connectable to the platform-secured network element using a platform-secured browser, and wherein the platform-secured network element includes an application deployed in a cloud network environment.

3. The computer-implemented method of claim 1 , wherein the platform-secured network element is a standalone device providing a secured connection point between the computing device and the network location.

4. The computer-implemented method of claim 1 , wherein the platform secured-network element is embedded within the computing device, and wherein one or more hardware communication components physically separate a communication of the computing device from other functionalities of the computing device.

5. The computer-implemented method of claim 1 , wherein the platform-secured network element is scalable to one or more computing devices in a single location or one or more computing devices in an enterprise network.

6. The computer-implemented method of claim 1 , wherein the constraint included in the artificial profile model represents a dependency between two or more data privacy elements of the set of data privacy elements.

7. The computer-implemented method of claim 1 , wherein the artificial profile model includes one or more attribution vectors, wherein an attribution vector represents a detectable characteristic associated with the computing device.

8. The computer-implemented method of claim 1 , wherein the artificial profile model is generated by evaluating the set of data privacy elements using one or more machine-learning techniques, wherein a result of the evaluation is used to determine the constraint for generating new artificial profiles.

9. The computer-implemented method of claim 1 , further comprising:

modifying the new artificial profile when the computing device requests access to another network location, wherein the new artificial profile is modified according to the constraint included in the artificial model profile.

10. A system, comprising:

one or more data processors; and

a non-transitory computer-readable storage medium containing instructions which, when executed on the one or more data processors, cause the one or more data processors to perform operations including:

identifying, at a platform-secured network element between a computing device and a gateway device, a set of data privacy elements, wherein a data privacy element characterizes a feature of a computing device, and wherein a data privacy element is detectable by a network host;

generating an artificial profile model, wherein the artificial profile model includes the set of data privacy elements, wherein the artificial profile model defines a relationship, and wherein a relationship can be associated with one or more constraints;

receiving a signal indicating that a computing device is requesting access to a network location;

detecting one or more data privacy elements associated with the computing device request to access the network location;

determining an artificial profile for the computing device, wherein the artificial profile includes the one or more data privacy elements, and wherein the artificial profile is usable to identify the computing device;

modifying the one or more data privacy elements, wherein the one or more data privacy elements are modified according to a constraint associated with the relationship defined by the artificial profile model; and

generating a new artificial profile for the computing device, wherein the new artificial profile includes the modified one or more data privacy elements, and wherein the new artificial profile masks the computing device from being identified.

11. The system of claim 10 , wherein the operations further comprise:

identifying an input element included in the network location;

receiving input, wherein the input is associated with an input signature;

modifying the input signature; and

transmitting the input, wherein when the input is received at the network location, the input is associated with the modified input signature.

12. The system of claim 10 , wherein the constraint included in the artificial profile model represents a dependency between two or more data privacy elements of the set of data privacy elements.

13. The system of claim 10 , wherein modifying the one or more data privacy elements includes preventing the one or more data privacy elements from being exposed to the network host.

14. The system of claim 10 , wherein the artificial profile model is generated by evaluating the set of data privacy elements using one or more machine-learning techniques, wherein a result of the evaluation is used to determine the constraint for generating new artificial profiles.

15. The system of claim 10 , wherein the operations further comprise:

modifying the new artificial profile when the computing device requests access to another network location, wherein the new artificial profile is modified according to the constraint included in the artificial model profile.

16. A computer-program product tangibly embodied in a non-transitory machine-readable storage medium, including instructions configured to cause a data processing apparatus to perform operations including:

identifying, at a platform-secured network element between a computing device and a gateway device, a set of data privacy elements, wherein a data privacy element characterizes a feature of a computing device, and wherein a data privacy element is detectable by a network host;

generating an artificial profile model, wherein the artificial profile model includes the set of data privacy elements, wherein the artificial profile model defines a relationship, and wherein a relationship can be associated with one or more constraints;

receiving a signal indicating that a computing device is requesting access to a network location;

detecting one or more data privacy elements associated with the computing device request to access the network location;

determining an artificial profile for the computing device, wherein the artificial profile includes the one or more data privacy elements, and wherein the artificial profile is usable to identify the computing device;

modifying the one or more data privacy elements, wherein the one or more data privacy elements are modified according to a constraint associated with the relationship defined by the artificial profile model; and

generating a new artificial profile for the computing device, wherein the new artificial profile includes the modified one or more data privacy elements, and wherein the new artificial profile masks the computing device from being identified.

17. The computer-program product of claim 16 , wherein the operations further comprise:

identifying an input element included in the network location;

receiving input, wherein the input is associated with an input signature;

modifying the input signature; and

transmitting the input, wherein when the input is received at the network location, the input is associated with the modified input signature.

18. The computer-program product of claim 16 , wherein the constraint included in the artificial profile model represents a dependency between two or more data privacy elements of the set of data privacy elements.

19. The computer-program product of claim 16 , wherein modifying the one or more data privacy elements includes preventing the one or more data privacy elements from being exposed to the network host.

20. The computer-program product of claim 16 , wherein the artificial profile model is generated by evaluating the set of data privacy elements using one or more machine-learning techniques, wherein a result of the evaluation is used to determine the constraint for generating new artificial profiles.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 14, 2019
From: SCHROEDER, KRISTOPHER PAUL; UNDERWOOD, TIMOTHY RYAN
To: GREY MARKET LABS, PBC
Reel/Frame 048604/0581 →
Continuity (2)
Continuation In Part 16005268 · Jun 11, 2018
Related Publication 20190377902A1 · Dec 12, 2019
Cited By (4)
US 12,273,370 US 12,273,372 US 12,367,524 US 12,401,683