EXTRACTING JOINT TOPIC-SENTIMENT MODELS FROM TEXT INPUTS

Patent №

US 11,238,243

Granted

2022-02-01

Filed 2019

Owner

OPTUM TECHNOLOGY, INC.

Lab

AI components

5

ml · nlp · kr · planning · hardware

Assignment

Recorded

Dataset

AIPD

2023_r1 edition

Application

16585201

There is a need for solutions for more effective and efficient natural language processing systems for short texts. This need can be addressed, for example, by a system configured to obtain an initial term-topic correlation data object for a plurality of digital documents, obtain a user-defined term-topic correlation data object for the plurality of digital documents, generate a refined term-topic correlation data object and a refined document-sentiment correlation data object for the plurality of digital documents based at least in part on the initial term-topic correlation data object and the user-defined term-topic correlation data object, obtain a user-defined document-topic correlation data object for the plurality of digital documents, and generate a refined document-topic correlation object for the plurality of digital documents based at least in part on the refined term-topic correlation data object and the user-defined document-topic correlation data object.

Machine learningNatural languageKnowledge representationPlanningAI hardwareG06F 40/56G06F 40/279G06F 40/284G06F 40/295G06F 40/30G06F 40/42G06V 30/416G16H 15/00

AI classification

Natural language1.00
Planning1.00
Machine learning1.00
AI hardware0.99
Knowledge representation0.92
Speech0.17
Vision0.12
Evolutionary computation0.00

Ownership

OPTUM TECHNOLOGY, INC.

assignment · 505120434

Assignors

ROY, SUMAN, VARMA, MALLADI VIJAY, ASTHANA, SIDDHARTHA, GUPTA, MADHVI, CHATURVEDI, ASHISH

On an employer assignment, the assignors are typically the inventors.

From the same owner

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