IP Library Granted Patent US 12,530,639
Granted Patent B2
US 12,530,639 · App. 18/087,539 · Granted Jan 20, 2026

Interactive network and method for securing conveyance services

Inventors: Alexis DaCosta (San Diego, CA); Vince Coletti (San Marcos, CA)
Assignee: TELEPORT MOBILITY, INC.
G06Q10/063114G01C21/343G05D1/00G06F16/24578G06Q10/02G06Q10/025G06Q10/063112G06Q10/06316G06Q30/0633G08G1/123G08G1/127B60W60/00253G01C21/34G06F3/0485G06F16/248G06Q10/0833G06Q50/40G06Q50/60G08G1/202
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Quick Facts
Patent No.
US 12,530,639
App. No.
18/087,539
Granted
Jan 20, 2026
Kind
B2
Abstract

The inventive platform and method optimize efficiency of operation within the conveyance industry for goods and services by providing for the filtering, selection and securing of conveyance services in accordance with one or more of client and representative preferences in substantially real time. An efficiency preference may be employed to pool conveyance services for optimizing vehicle utilization.

Claims (70)

1 . A platform for efficiently securing a conveyance service for transportation of a client order comprising a good or a service ordered by a client from a first geographical location to at least one second geographical location using an autonomous vehicle (AV) associated with a conveyance service provider, wherein the AV is a self governing machine that performs the conveyance service unaided by a human driver, the platform comprising:

one or more external server in communication with a network and associated with the conveyance service provider, the one or more external server comprising a substantially real time source of conveyance service offerings (CSOs), the CSOs comprising conveyance data including information relating to one or more of a conveyance service detail and a vehicle detail, wherein the CSOs are dynamic and repeatedly updated;

a central server in communication with the network, the central server configured for receiving the CSOs from the one or more external server;

an application in communication with the network, the application configured for receiving one or a combination of geographical location data, vehicle-related data, and a client preference;

a client terminal in communication with the network, the client terminal having an input device configured to receive an entry of the client preference;

a geographical location module associated with the AV, the geographical location module configured for providing the geographical location data;

a display device associated with the client terminal and configured to display information associated with the conveyance service;

wherein one or a combination of the central server and the application is automated in whole or in part and further configured to perform standardizing and aggregating of at least a portion of the CSOs;

wherein one or a combination of the central server and the application is further configured to, after standardizing and aggregating:

(a) first filter, in any order, at least a portion of the CSOs using a first combination of one or more of the client preference, the vehicle-related data, and the geographical location data to identify a filtered subset of CSOs;

(b) second filter to identify one or more preferred conveyance service offering (pCSO) from the filtered subset of CSOs using a second combination of one or more of the client preference, the vehicle-related data, and the geographical location data;

(c) secure the conveyance service associated with the one or more pCSO;

(d) determine a route associated with the one or more pCSO for optimizing utilization of the AV to perform the secured conveyance service and communicate instructions to the AV, wherein the instructions comprise the route to perform the secured conveyance service;

(e) generate on the display device a visual representation corresponding to the route followed by the AV, wherein the visual representation comprises a vehicle marker indicating an AV position relative to the route; and

(f) dynamically update the visual representation using the geographical location data to display the AV position relative to the route;

wherein the AV receives the instructions via the network and follows the route to perform the secured conveyance service unaided by a human driver.

2 . The platform of claim 1 , wherein the conveyance service is one or a combination of services that support or provide transportation of a person or an object from the first geographical location to the at least one second geographical location.

3 . The platform of claim 1 , wherein the client comprises one or more of a beneficiary of the conveyance service, a demand-side user, a customer, a consumer, a purchaser, a recipient, a passenger, a shipper, and a service provider.

4 . The platform of claim 1 , wherein the conveyance service provider comprises one or more of an entity that conveys goods or services, an entity that produces or supplies freight, an entity that provides transportation services, a courier, an AV owner, a goods supplier, a service provider, a dispatcher, a logistics provider, a broker, a freight provider, a fleet manager, and a map provider.

5 . The platform of claim 1 , wherein the AV comprises one or more of a wheeled vehicle, a delivery vehicle, a truck, a trailer, a train, an aircraft, a vessel, a transportation machine, and a space vehicle.

6 . The platform of claim 1 , wherein the application comprises one or a combination of a web application, a mobile application, a cloud application, a computer application, an application programming interface (API), a software as a service (SaaS), a widget, a plugin, a computer program, and system software.

7 . The platform of claim 1 , wherein the client terminal comprises one or a combination of a computer, a smartphone, a tablet, a wearable device, a plugin, and an In-Vehicle device.

8 . The platform of claim 1 , wherein the visual representation comprises a geographical map having the route and the vehicle marker superimposed thereon.

9 . The platform of claim 1 , wherein at least a portion of one or more of the CSOs, the vehicle-related data, and the geographical location data is pre-filtered, pre-standardized, or pre-categorized.

10 . The platform of claim 1 , wherein at least a portion of one or a combination of the CSOs, the client preference, the geographical location data, and the vehicle-related data is structured in a uniform format prior to being processed.

11 . The platform of claim 1 , wherein filtering further comprises using a different geographical location.

12 . The platform of claim 1 , wherein the geographical location module comprises one or more of a Global Positioning System (GPS), a satellite tracking, a RFID tracking, a radiolocation, a WiFi positioning system, geofencing, a global system for mobile communications, a cell phone triangulation, and an internet tracking.

13 . The platform of claim 1 , wherein the visual representation is further configured to enable the client to navigate within an area of the visual representation.

14 . The platform of claim 1 , wherein one or a combination of the application and the central server is further configured to receive input from a dispatcher associated with one of the conveyance service provider, a different business entity, the client, and the AV to secure one or more of the conveyance service and an additional conveyance service.

15 . The platform of claim 1 , wherein the conveyance service provider comprises a first business entity associated with a first service provider that supports the conveyance service and a second business entity associated with a second service provider that provides the conveyance service.

16 . The platform of claim 1 , wherein the conveyance service provider comprises a first business entity associated with a service provider and a second business entity associated with a map provider.

17 . The platform of claim 1 , wherein the client comprises a controller that secures one of the conveyance service and an additional conveyance service.

18 . The platform of claim 1 , wherein at least one function of one or a combination of the central server and the application comprises using one of machine learning technology and blockchain technology.

19 . The platform of claim 1 , wherein one or a combination of the application and the central server is further configured to repeat steps (a) through (c) to optimize utilization of the AV by securing an additional conveyance service.

20 . The platform of claim 1 , wherein the application is associated with one or more of the AV, the client, the conveyance service provider, a service provider, and a map provider.

21 . The platform of claim 1 , wherein the AV comprises a vehicle designated as one of level 3, level 4, or level 5 within levels of autonomy specified by Society of Automotive Engineer (SAE) standards.

22 . A method within a network for efficiently securing a conveyance service for transportation of a client order comprising a good or a service ordered by a client from a first geographical location to at least one second geographical location using an autonomous vehicle (AV) associated with a conveyance service provider, wherein the AV is a self governing machine that performs the conveyance service unaided by a human driver, the method comprising:

(a) receiving within one or a combination of an application and a central server in communication with the network, one or a combination of, in any order:

(i) conveyance service offerings (CSOs) from one or more external server associated with the conveyance service provider, the CSOs comprising conveyance data including information relating to one or more of a conveyance service detail and a vehicle detail, wherein the CSOs are dynamic and repeatedly updated;

(ii) vehicle-related data;

(iii) geographical location data provided by a geographical location module associated with the AV; and

(iv) a client preference, the client preference provided via a client terminal having an input device and associated with a display device;

(b) standardizing and aggregating at least a portion of the CSOs;

(c) first filtering at least a portion of the CSOs using a first combination of one or more of the client preference, the vehicle-related data, and the geographical location data to identify a filtered subset of CSOs;

(d) second filtering to identify one or more preferred conveyance service offering (pCSO) from the filtered subset of CSOs using a second combination of one or more of the client preference, the vehicle-related data, and the geographical location data;

(e) securing the conveyance service associated with the one or more pCSO;

(f) determining a route associated with the one or more pCSO for optimizing utilization of the AV to perform the secured conveyance service and communicating instructions to the AV, wherein the instructions comprise the route to perform the secured conveyance service;

(g) generating on the display device a visual representation corresponding to the route followed by the AV, wherein the visual representation comprises a vehicle marker indicating an AV position relative to the route; and

(h) dynamically updating the visual representation using the geographical location data to display the AV position relative to the route;

wherein the AV receives the instructions via the network and follows the route to perform the secured conveyance service unaided by a human driver.

23 . The method of claim 22 , wherein the conveyance service provider comprises one or more of an entity that conveys goods or services, an entity that produces or supplies freight, an entity that provides transportation services, a courier, an AV owner, a goods supplier, a service provider, a dispatcher, a logistics provider, a broker, a freight provider, a fleet manager, and a map provider.

24 . The method of claim 22 , wherein the AV comprises one or more of a wheeled vehicle, a delivery vehicle, a truck, a trailer, a train, an aircraft, a vessel, a transportation machine, and a space vehicle.

25 . The method of claim 22 , wherein the application comprises one or a combination of a web application, a mobile application, a cloud application, a computer application, an application programming interface (API), a software as a service (SaaS), a widget, a plugin, a computer program, and system software.

26 . The method of claim 22 , wherein one or a combination of the application and the central server is further configured to repeat steps (a) through (e) to optimize utilization of the AV by securing an additional conveyance service.

27 . The method of claim 22 , wherein the visual representation comprises a geographical map having the route and the vehicle marker superimposed thereon.

28 . The method of claim 22 , wherein the client comprises a controller that secures one of the conveyance service and an additional conveyance service.

29 . The method of claim 22 , wherein one or more of steps (a) through (h) comprises using one of machine learning technology and blockchain technology.

30 . The method of claim 22 , wherein the conveyance service is one or a combination of services that support or provide transportation of a person or an object from the first geographical location to the at least one second geographical location.

31 . The method of claim 22 , wherein at least a portion of one or more of the CSOs, the vehicle-related data, and the geographical location data is pre-filtered, pre-standardized, or pre-categorized.

32 . The method of claim 22 , wherein, prior to step (a), at least a portion of one or a combination of the CSOs, the vehicle detail, an estimated time of arrival, the client preference, the geographical location data, and the vehicle-related data is structured in a uniform format.

33 . The method of claim 22 , wherein filtering further comprises using a different geographical location.

34 . The method of claim 22 , wherein the geographical location module comprises one or more of a Global Positioning System (GPS), a satellite tracking, a RFID tracking, a radiolocation, a WiFi positioning system, geofencing, a global system for mobile communications, a cell phone triangulation, and an internet tracking.

35 . The method of claim 22 , wherein the visual representation is further configured to enable the client to navigate within an area of the visual representation.

36 . The method of claim 22 , wherein one or a combination of the application and the central server is further configured to receive input from a dispatcher associated with one of the conveyance service provider, a different business entity, the client, and the AV to secure one or more of the conveyance service and an additional conveyance service.

37 . The method of claim 22 , wherein the conveyance service provider comprises a first business entity associated with a first service provider that supports the conveyance service and a second business entity associated with a second service provider that provides the conveyance service.

38 . The method of claim 22 , wherein the conveyance service provider comprises a first business entity associated with a service provider and a second business entity associated with a map provider.

39 . The method of claim 22 , wherein the client comprises one or more of a beneficiary of the conveyance service, a demand-side user, a customer, a consumer, a recipient, a passenger, a shipper, and a service provider.

40 . The method of claim 22 , wherein the application is associated with one or more of the AV, the client, the conveyance service provider, a service provider, and a map provider.

41 . The method of claim 22 , wherein the client terminal comprises one or a combination of a computer, a smartphone, a tablet, a wearable device, and an In-Vehicle infotainment device.

42 . The method of claim 22 , wherein the AV comprises a vehicle designated as one of level 3, level 4, or level 5 within levels of autonomy specified by Society of Automotive Engineer (SAE) standards.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 9, 2023
From: DACOSTA, ALEXIS; COLETTI, VINCE
To: TELEPORT MOBILITY, INC.
Reel/Frame 062647/0448 →
Continuity (10)
Continuation 17551048 · Dec 14, 2021
Continuation 17397882 · Aug 9, 2021
Continuation 16038487 · Jul 18, 2018
Continuation In Part 15680439 · Aug 18, 2017
Division 15675757 · Aug 13, 2017
Provisional Application 62539706 · Aug 1, 2017
Provisional Application 62482306 · Apr 6, 2017
Provisional Application 62426549 · Nov 27, 2016
Provisional Application 62375491 · Aug 16, 2016
Related Publication 20230128628A1 · Apr 27, 2023
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