IP Library Granted Patent US 11,553,089
Granted Patent B2
US 11,553,089 · App. 17/750,918 · Granted Jan 10, 2023

System and method for mobile device active callback prioritization

Inventors: Matthew DiMaria (Brentwood, TN); Matthew Donaldson Moller (Petaluma, CA); Shannon Lekas (Cushing, TX)
Assignee: VIRTUAL HOLD TECHNOLOGY SOLUTIONS, LLC
H04M3/5231H04L47/6275H04L67/60H04M3/5191H04W4/16H04L45/08
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Quick Facts
Patent No.
US 11,553,089
App. No.
17/750,918
Granted
Jan 10, 2023
Kind
B2
Abstract

A system and methods for mobile device active callback prioritization, utilizing an enhanced callback prioritization engine operating on a user's mobile device for integration through the operating system and software applications operating on the device, wherein the enhanced callback prioritization engine receives intercepted data or voice messages sent to the mobile device, retrieves and aggregates data related to the assigned messages, inputs the assigned data message and aggregate data into one or more machine learning algorithms wherein the algorithms may analyze the input data, the results of the analysis may be used to compute a priority score for the assigned data message, and generates a callback list from the computed prioritization score. The priority score is in part based on 3rd party application data related to the data or voice messages providing context to the machine learning algorithms.

Claims (29)

1. A mobile device with active callback prioritization, comprising:

a processor, a memory, and a plurality of programming instructions stored in the memory and operable on the processor;

a callback integration engine comprising a subset of the plurality of programming instructions that, when operating on the processor, cause the processor to:

receive a data or voice message, the data or voice message comprising at least one characteristic;

produce a callback object in memory comprising information associated with the data or voice message received; and

send the callback object to an enhanced callback prioritization engine; and

the enhanced callback prioritization engine comprising a subset of the plurality of programming instructions that, when operating on the processor, cause the processor to:

receive the callback object from the callback integration engine;

retrieve and aggregate application data related to the data or voice message;

use the callback object and the aggregated application data as inputs into one or more machine learning algorithms, wherein the machine learning algorithms analyze the callback object's information and the aggregated application data to determine the context and urgency associated with the data or voice message;

for each callback object, compute a priority score based at least upon the results of the analysis; and

use the computed priority score, the callback object data, and the data or voice message to generate a callback list.

2. The mobile device of claim 1 , wherein the application data is retrieved using application programming interfaces.

3. The mobile device of claim 1 , wherein the callback list comprises a smart reply message.

4. The mobile device of claim 1 , wherein the callback integration engine receives a user confirmed callback list and executes the confirmed callback items on the list.

5. The mobile device of claim 1 , wherein the application data comprises data from communication, social media, financial, gaming, and productivity applications.

6. The mobile device of claim 1 , wherein the machine learning algorithms comprise natural language processing.

7. A method for active callback prioritization, comprising the steps of:

receiving a data or voice message, the data or voice message comprising at least one characteristic;

producing a callback object in memory comprising information associated with the data or voice message received;

retrieving and aggregating application data related to the data or voice message;

using the callback object and the aggregated application data as inputs into one or more machine learning algorithms, wherein the machine learning algorithms analyze the callback object's information and the aggregated application data to determine the context and urgency associated with the data or voice message;

for each callback object, computing a priority score based at least upon the results of the analysis; and

using the computed priority score, the callback object data, and the data or voice message to generate a callback list.

8. The method of claim 7 , wherein the application data is retrieved using application programming interfaces.

9. The method of claim 7 , wherein the callback list comprises a smart reply message.

10. The method of claim 7 , wherein a user confirmed callback list is generated and executes the confirmed callback items on the list.

11. The method of claim 7 , wherein the application data comprises data from communication, social media, financial, gaming, and productivity applications.

12. The method of claim 7 , wherein the machine learning algorithms comprise natural language processing.

Assignments (2)
SUPPLEMENT NO. 1 TO GRANT OF SECURITY INTEREST IN PATENT RIGHTS Recorded Oct 31, 2022
From: VIRTUAL HOLD TECHNOLOGY SOLUTIONS, LLC
To: WILMINGTON TRUST, NATIONAL ASSOCIATION, AS COLLATERAL AGENT
Reel/Frame 061808/0358 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 29, 2022
From: DIMARIA, MATTHEW; MOLLER, MATTHEW DONALDSON; LEKAS, SHANNON
To: VIRTUAL HOLD TECHNOLOGY SOLUTIONS, LLC
Reel/Frame 060360/0267 →
Continuity (10)
Continuation In Part 17572405 · Jan 10, 2022
Continuation 17389837 · Jul 30, 2021
Continuation 16985093 · Aug 4, 2020
Continuation 16583967 · Sep 26, 2019
Continuation In Part 16542577 · Aug 16, 2019
Continuation 16523501 · Jul 26, 2019
Continuation 15411424 · Jan 20, 2017
Provisional Application 62828133 · Apr 2, 2019
Provisional Application 62820190 · Mar 18, 2019
Related Publication 20220279070A1 · Sep 1, 2022