CLASSIFYING UNSTRUCTURED COMPUTER TEXT FOR COMPLAINT-SPECIFIC INTERACTIONS USING RULES-BASED AND MACHINE LEARNING MODELING

Patent №

US 10,692,016

Granted

2020-06-23

Filed 2017

Owner

FMR LLC

Lab

AI components

6

ml · nlp · speech · kr · planning · hardware

Assignment

Recorded

Dataset

AIPD

2023_r1 edition

Application

15426959

Methods and apparatuses are described for analyzing unstructured computer text for identification and classification of complaint-specific interactions. A computer data stores unstructured text. A server computing device splits the unstructured text into phrases of words. The server generates a set of tokens from each phrase and removes tokens that are stopwords. The server generates a normalized sentiment score for each set of tokens. The server uses a rules-based classification engine to generate a rules-based complaint score for each set of tokens. The server uses an artificial intelligence machine learning model to generate a model-based complaint score for each set of tokens. The server determines determine whether each set of tokens corresponds to a complaint-specific interaction based upon the rules-based complaint score and the model-based complaint score.

AI classification

Natural language1.00
Knowledge representation1.00
Planning1.00
Speech1.00
Machine learning1.00
AI hardware0.96
Vision0.04
Evolutionary computation0.00

Ownership

FMR LLC

assignment · 504720320

Assignors

CHANDRAMOULI, ARAVIND, HARDENIYA, NITIN, KUMAR, SUNIL

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

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