IP Library Granted Patent US 10,453,352
Granted Patent B1
US 10,453,352 · App. 16/379,144 · Granted Oct 22, 2019

Using train telematics data to provide information in one or more vehicles to reduce accident risk

Inventor: Gregory Hayward (Bloomington, IL)
Assignee: State Farm Mutual Automobile Insurance Company
G08G7/02G01C21/3492G01C21/367G05D1/0088G05D1/0214G05D1/0278G05D1/0285G06Q40/08G08G1/096725G08G1/096783G08G1/096855G08G1/096883G08G1/162G05D2201/0213H04L67/12H04L67/18
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Quick Facts
Patent No.
US 10,453,352
App. No.
16/379,144
Filed
Apr 9, 2019
Granted
Oct 22, 2019
Kind
B1
Examiner
WONG, YUEN H
Art Unit
3667
USPC
701/26
Abstract

A computer system configured to use train telematics data to reduce risk of accidents via a mobile device traveling within a vehicle may be provided. The mobile device may be configured to (1) receive train telematics data associated with a train that includes GPS location, speed, route, heading, acceleration, and/or track data; (2) determine when, or a time period of when, the train will pass through, be passing through, or be within a predetermined distance of a railroad crossing based upon the train telematics data; (3) determine an alternate route for the vehicle to take to avoid waiting at the railroad crossing; and (4) cause display of the alternate route on a display of the mobile device or a vehicle navigation system to allow the train to pass and to avoid train-vehicle collisions. Insurance discounts may be generated based upon the risk mitigation or prevention functionality.

Claims (36)

1. A computer system configured to use train telematics data to reduce accident risk, the computer system comprising:

a mobile device traveling within a vehicle, the mobile device including:

at least one processor or associated transceiver, the at least one processor or associated transceiver configured to:

receive, at the mobile device via wireless communication or data transmission, the train telematics data associated with a train, the train telematics data including location and speed data;

determine, at the mobile device based upon the train telematics data, an indication of when the train will pass through a railroad crossing;

determine, at the mobile device based upon a relevance of the train, an alternate route for the vehicle to take to avoid waiting at the railroad crossing to allow for the train to pass through the railroad crossing, the relevance of the train being based upon the indication of when the train will pass through or be within a predetermined distance of the railroad crossing; and

cause, based upon the relevance of the train, the mobile device or a vehicle navigation system to provide a graphical user interface (GUI) including a display of (i) an indication that the train will pass through the railroad crossing and (ii) the alternate route, to facilitate the train safely passing through the railroad crossing.

2. The computer system of claim 1 , wherein the vehicle is an autonomous vehicle, and at least one processor is configured to determine an alternate route for the autonomous vehicle to take to avoid waiting at the railroad crossing.

3. The computer system of claim 2 , wherein the telematics data associated with the vehicle includes at least one of location, acceleration, deceleration, braking, cornering, direction, heading, left turn, right turn, speed, lane, or gyroscope data associated with the vehicle.

4. The computer system of claim 1 , wherein the at least one processor or associated transceiver is configured to determine the indication of when the train will pass through the railroad crossing based upon at least one of (1) at least one of the location data or speed data, or (2) comparison via the one or more processors of (i) the at least one of the location data or speed data with (ii) at least one of a current time or location data of one of the railroad crossing.

5. The computer system of claim 1 , wherein the train telematics data further includes one or more of time, braking, cornering, direction, heading, left turn, right turn, track, GPS (Global Positioning System) latitude and longitude, gyroscope, battery level, or telephone usage data associated with the train.

6. The computer system of claim 1 , further comprising an insurance provider remote server, wherein the at least one processor or associated transceiver is configured to send an indication to the insurance provider remote server that the mobile device traveling within the vehicle includes risk mitigation or prevention functionality associated with (1) receiving the train telematics data, and (2) directing corrective actions based upon the relevance of the train, so as to cause the insurance provider remote server to at least one of display, adjust, or generate an insurance discount associated with the vehicle.

7. The computer system of claim 6 , wherein the at least one processor or associated transceiver is configured to send an indication of an amount of usage of the risk mitigation or prevention functionality to the insurance provider remote server so as to cause the insurance provider remote server to at least one of display, adjust, or generate the insurance discount as a time or mileage usage-based insurance discount.

8. A computer-implemented method of using train telematics data to reduce accident risk, the method comprising:

receiving, at a mobile device traveling within a vehicle via at least one processor of the mobile device or associated transceiver via wireless communication or data transmission, the train telematics data associated with a train, the train telematics data including location and speed data;

determining, at the mobile device via the at least one processor of the mobile device based upon the train telematics data, an indication of when the train will pass through a railroad crossing;

determining, at the mobile device via the at least one processor of the mobile device, based upon a relevance of the train, an alternate route for the vehicle to take to avoid waiting at the railroad crossing to allow for the train to pass through the railroad crossing, the relevance of the train being based upon the indication of when the train will pass through the railroad crossing; and

causing, via the at least one processor of the mobile device, based upon the relevance of the train, the mobile device or a vehicle navigation system to provide a graphical user interface (GUI) including a display of (i) an indication that the train will pass through the railroad crossing and (ii) the alternate route, to facilitate the train safely passing through the railroad crossing.

9. The computer-implemented method of claim 8 , the method comprising determining, via the at least one processor of the mobile device, the relevance of the train by determining, based upon the indication of when the train will pass through the railroad crossing, and further based upon telematics data associated with the vehicle, an indication of whether the vehicle will be able to drive through the railroad crossing without the train being within a threshold distance from the railroad crossing.

10. The computer-implemented method of claim 8 , wherein the vehicle is an autonomous vehicle, and the method further comprises determining, via the at least one processor of the mobile device, an alternate route for the autonomous vehicle to take to avoid waiting at the railroad crossing.

11. The computer-implemented method of claim 8 , wherein determining, via the at least one processor of the mobile device, the indication of when the train will pass through the railroad crossing is based upon at least one of (1) at least one of the location data or speed data, or (2) comparison of (i) the at least one of the location data or the speed data with (ii) at least one of a current time or location data of one of the railroad crossing.

12. The computer-implemented method of claim 8 , wherein the train telematics data includes one or more of time, braking, cornering, direction, heading, left turn, right turn, track, GPS (Global Positioning System) latitude and longitude, gyroscope, battery level, or telephone usage data associated with the train.

13. The computer-implemented method of claim 8 , the method comprising sending, via the at least one processor of the mobile device or the associated transceiver, an indication to an insurance provider remote server that the mobile device traveling within the vehicle includes risk mitigation or prevention functionality associated with (1) receiving the train telematics data, and (2) directing corrective actions based upon the relevance of the train, so as to cause the insurance provider remote server to at least one of display, adjust, or generate an insurance discount associated with the vehicle.

14. The computer-implemented method of claim 13 , the method comprising sending, via the at least one processor of the mobile device or the associated transceiver, an indication of an amount of usage of the risk mitigation or prevention functionality to the insurance provider remote server so as to cause the insurance provider remote server to at least one of display, adjust, or generate the insurance discount as a time or mileage usage-based insurance discount.

15. A computer-implemented method for utilizing train telematics data, the method comprising:

receiving, by a first device located within a vehicle, the train telematics data from a second device associated with a train, the train telematics data including information indicative of a location and speed of the train;

determining, by the first device located within the vehicle, at least one of a speed, a location, or a route of the vehicle;

determining, by the first device located within the vehicle, whether the vehicle will be able to cross a railroad crossing before the train is within a threshold distance from the railroad crossing, so as to determine a relevance of the train; and

providing, within the vehicle, a graphical user interface (GUI) including a display of (1) an indication of whether the vehicle will be able to cross the railroad crossing before the train is within the threshold distance from the railroad crossing, and (2) an indication of the location of the train, to facilitate the train passing through the railroad crossing unimpeded by the vehicle.

16. The computer-implemented method of claim 15 , wherein determining, by the first device located within the vehicle, whether the vehicle will be able to cross the railroad crossing is based upon a comparison between (1) the at least one of the speed, the location, or the route of the vehicle, and (2) the location and speed of the train.

17. The computer-implemented method of claim 15 , the method comprising determining, based upon a current driving route, an adjusted driving route for the vehicle when it is determined that the vehicle will not be able to cross the railroad crossing before the train is within the threshold distance from the railroad crossing.

18. The computer-implemented method of claim 15 , the method comprising:

receiving, by a smart railroad crossing infrastructure, the train telematics data from the second device; and

broadcasting, by the smart railroad crossing infrastructure, the train telematics data so that the act of receiving, by the first device, the train telematics data from the second device includes receiving, by the first device, the train telematics data from the second device via the smart railroad crossing infrastructure.

19. The computer-implemented method of claim 15 , wherein the vehicle is an autonomous vehicle, and the method further comprises determining, via the first device, an alternate route for the autonomous vehicle to take to avoid waiting at the railroad crossing.

20. The computer-implemented method of claim 15 , the method comprising sending, by the first device located within the vehicle, an indication to an insurance provider remote server that the first device located within the vehicle includes risk mitigation or prevention functionality associated with (1) receiving the train telematics data, and (2) directing corrective actions based upon the relevance of the train, so as to cause the insurance provider remote server to at least one of display, adjust, or generate an insurance discount associated with the vehicle.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 2, 2022
From: HAYWARD, GREGORY
To: STATE FARM MUTUAL AUTOMOBILE INSURANCE COMPANY
Reel/Frame 058866/0182 →
Continuity (18)
Continuation 16003248 · Jun 8, 2018
Continuation 15798062 · Oct 30, 2017
Continuation 14990165 · Jan 7, 2016
Provisional Application 62250286 · Nov 3, 2015
Provisional Application 62247334 · Oct 28, 2015
Provisional Application 62232054 · Sep 24, 2015
Provisional Application 62232050 · Sep 24, 2015
Provisional Application 62232065 · Sep 24, 2015
Provisional Application 62232097 · Sep 24, 2015
Provisional Application 62232083 · Sep 24, 2015
Provisional Application 62232075 · Sep 24, 2015
Provisional Application 62232090 · Sep 24, 2015
Provisional Application 62232035 · Sep 24, 2015
Provisional Application 62232045 · Sep 24, 2015
Provisional Application 62207561 · Aug 20, 2015
Provisional Application 62204749 · Aug 13, 2015
Provisional Application 62113749 · Feb 9, 2015
Provisional Application 62105468 · Jan 20, 2015
Cited By (7)
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