IP Library Granted Patent US 12,602,729
Granted Patent B2
US 12,602,729 · App. 18/732,535 · Granted Apr 14, 2026

Systems and methods for building, utilizing, and/or maintaining an autonomous vehicle-related event distributed led

Inventors: Matthew L. Floyd (Alpharetta, GA); Alvin Hon-wai Yu (Johns Creek, GA); Antwuan Murphy (Riverdale, GA); Brittney Benzio (Atlanta, GA); Lindsi Brantley (Atlanta, GA); Matthew S. Delaney (Alpharetta, GA); Matthew Vulich (Marietta, GA); Matthew S. Rodriguez (Dunwoody, GA); Neha Goel (Atlanta, GA); Sabrina Collins (Woodstock, GA); Annie Pudlo Murillo (Roswell, GA)
Assignee: STATE FARM MUTUAL AUTOMOBILE INSURANCE COMPANY
G06Q40/08G05D1/0214G05D1/617G06Q50/26G07C5/008H04L9/50G05D1/0088
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Quick Facts
Patent No.
US 12,602,729
App. No.
18/732,535
Filed
Jun 3, 2024
Granted
Apr 14, 2026
Kind
B2
Art Unit
3694
USPC
705/4
Abstract

Methods and systems for building, utilizing, and/or maintaining an autonomous vehicle-related event distributed ledger or blockchain are provided. One or more processors may receive indications of autonomous vehicle events. The autonomous vehicle events may include information relating to technology usage and/or operational events. The autonomous vehicle events may be compiled into a log of recorded autonomous vehicle events. Based upon the autonomous vehicle events, an action to implement bay be determined. Additionally, the log may be distributed to a public or private network of distributed nodes. As a result, the distributed nodes may maintain an up-to-date record of the shared ledger of autonomous vehicle events.

Claims (60)

1 . A computer-implemented method of building, utilizing, and/or maintaining an autonomous vehicle-related event distributed ledger or blockchain, the method comprising:

transmitting, via one or more processors, a subscription request associated with a smart contract and pertaining to an autonomous vehicle, wherein transmitting the subscription request causes an electronic device at the autonomous vehicle to:

generate one or more autonomous vehicle events based upon sensor data that is relevant to the subscription request;

receiving, via the one or more processors and/or transceivers, the generated autonomous vehicle events;

updating, via the one or more processors, the smart contract based upon the generated autonomous vehicle events;

determining, via the one or more processors, an action to implement based upon the updated smart contract; and

updating, via the one or more processors and/or transceivers and via a consensus formed by a public or private network of distributed nodes, the distributed ledger or the blockchain to include the updated smart contract and/or an indication of the action to implement.

2 . The computer-implemented method of claim 1 , the method further comprising compiling, via the one or more processors, the one or more autonomous vehicle events into a log of recorded autonomous vehicle-related events.

3 . The computer-implemented method of claim 1 , wherein the determined action to implement based upon the updated smart contract is estimating an actual value of the autonomous vehicle.

4 . The computer-implemented method of claim 1 , wherein the determined action to implement based upon the updated smart contract is estimating a replacement cost of the autonomous vehicle.

5 . The computer-implemented method of claim 1 , wherein the determined action to implement based upon updated smart contract is generating a usage- based insurance quote for the autonomous vehicle and/or a specific trip.

6 . The computer-implemented method of claim 1 , wherein the determined action to implement based upon the updated smart contract is to determine that the autonomous vehicle was involved in a vehicle collision, and to commence a claim handling process.

7 . The computer-implemented method of claim 1 , wherein the generated autonomous vehicle events are related to at least one of the following autonomous vehicle systems, features, or technologies:

driver alertness monitoring;

driver responsiveness monitoring;

pedestrian detection;

artificial intelligence;

a back-up system;

a navigation system;

a positioning system;

a security system;

an anti-hacking measure;

a theft prevention system; or

remote vehicle location determination.

8 . A computer system configured to build, utilize, and/or maintain an autonomous vehicle-related event distributed ledger or blockchain, the computer system comprising one or more processors, sensors, and/or transceivers configured to:

transmit a subscription request associated with a smart contract and pertaining to an autonomous vehicle, wherein transmitting the subscription request causes an electronic device at the autonomous vehicle to:

generate one or more autonomous vehicle events based upon sensor data that is relevant to the subscription request;

receive, via the one or more processors and/or transceivers, the generated autonomous vehicle events;

update, via the one or more processors, the smart contract based upon the generated autonomous vehicle events;

determine, via the one or more processors, an action to implement based upon the updated smart contract; and

update, via the one or more processors and/or transceivers and via a consensus formed by a public or private network of distributed nodes, the distributed ledger or the blockchain to include the updated smart contract and/or an indication of the action to implement.

9 . The computer system of claim 8 , the computer system further configured to compile, via the one or more processors, the one or more autonomous vehicle events into a log of recorded autonomous vehicle-related events.

10 . The computer system of claim 8 , wherein the determined action to implement based upon the updated smart contract is estimating an actual value of the autonomous vehicle.

11 . The computer system of claim 8 , wherein the determined action to implement based upon the updated smart contract is estimating a replacement cost of the autonomous vehicle.

12 . The computer system of claim 8 , wherein the determined action to implement based upon the updated smart contract is generating a usage-based insurance quote for the autonomous vehicle and/or a specific trip.

13 . The computer system of claim 8 , wherein the determined action to implement based upon the updated smart contract is to determine that the autonomous vehicle was involved in a vehicle collision, and to commence a claim handling process.

14 . The computer system of claim 8 , wherein the generated autonomous vehicle events are related to at least one of the following autonomous vehicle systems, features, or technologies:

driver alertness monitoring;

driver responsiveness monitoring;

pedestrian detection;

artificial intelligence;

a back-up system;

a navigation system;

a positioning system;

a security system;

an anti-hacking measure;

a theft prevention system; or

remote vehicle location determination.

15 . A non-transitory computer-readable storage medium storing processor-executable instructions, that, when executed, cause one or more processors to:

transmit, via one or more processors, a subscription request associated with a smart contract and pertaining to an autonomous vehicle, wherein transmitting the subscription request causes an electronic device at the autonomous vehicle to:

generate one or more autonomous vehicle events based on sensor data that is relevant to the subscription request;

receive, via the one or more processors and/or transceivers, the generated autonomous vehicle events;

update, via the one or more processors, a smart contract based upon the generated autonomous vehicle events;

determine, via the one or more processors, an action to implement based upon the updated smart contract; and

update, via the one or more processors and/or transceivers and via a consensus formed by a public or private network of distributed nodes, a distributed ledger or the blockchain to include the updated smart contract and/or an indication of the action to implement.

16 . The computer-readable storage medium of claim 15 , wherein the instructions, when executed, further cause the one or more processors to compile, via the one or more processors, the one or more autonomous vehicle events into a log of recorded autonomous vehicle-related events.

17 . The computer-readable storage medium of claim 15 , wherein the determined action to implement based upon the updated smart contract is estimating an actual value of the autonomous vehicle.

18 . The computer-readable storage medium of claim 15 , wherein the determined action to implement based upon the updated smart contract is estimating a replacement cost of the autonomous vehicle.

19 . The computer-readable storage medium of claim 15 , wherein the determined action to implement based upon the updated smart contract is generating a usage-based insurance quote for the autonomous vehicle and/or a specific trip.

20 . The computer-readable storage medium of claim 15 , wherein the determined action to implement based upon the updated smart contract is to determine that the autonomous vehicle was involved in a vehicle collision, and to commence a claim handling process.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 7, 2024
From: FLOYD, MATTHEW L.; YU, ALVIN HON-WAI; MURPHY, ANTWUAN; BENZIO, BRITTNEY; BRANTLEY, LINDSI; DELANEY, MATTHEW S.; VULICH, MATTHEW; RODRIGUEZ, MATTHEW S.; GOEL, NEHA; COLLINS, SABRINA; MURILLO, ANNIE PUDLO
To: STATE FARM MUTUAL AUTOMOBILE INSURANCE COMPANY
Reel/Frame 067657/0798 →
Continuity (7)
Continuation 17077526 · Oct 22, 2020
Continuation 15624292 · Jun 15, 2017
Provisional Application 62457430 · Feb 10, 2017
Provisional Application 62434215 · Dec 14, 2016
Provisional Application 62428223 · Nov 30, 2016
Provisional Application 62425684 · Nov 23, 2016
Related Publication 20240320753A1 · Sep 26, 2024
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