AUTOMATIC IDENTIFICATION OF MISCLASSIFIED ELEMENTS OF AN INFRASTRUCTURE MODEL

Patent №

US 11,645,363

Granted

2023-05-09

Filed 2020

Owner

BENTLEY SYSTEMS, INCORPORATED

Lab

AI components

4

ml · nlp · vision · planning

Assignment

Recorded

Dataset

AIPD

2023_r1 edition

Application

17075412

In example embodiments, techniques are provided to automatically identify misclassified elements of an infrastructure model using machine learning. In a first set of embodiments, supervised machine learning is used to train one or more classification models that use different types of data describing elements (e.g., a geometric classification model that uses geometry data, a natural language processing (NLP) classification model that uses textual data, and an omniscient (Omni) classification model that uses a combination of geometry and textual data; or a single classification model that uses geometry data, textual data, and a combination of geometry and textual data). Predictions from classification models (e.g., predictions from the geometric classification model, NLP classification model and the Omni classification model) are compared to identify misclassified elements, or a prediction of misclassified elements directly produced (e.g., from the single classification model). In a second set of embodiments, unsupervised machine learning is used to detect abnormal associations in data describing elements (e.g., geometric data and textual data) that indicate misclassifications. Identified misclassifications are displayed to a user for review and correction.

Machine learningNatural languageVisionPlanningG06F 18/2193G06F 30/13G06F 18/2148G06F 18/24155G06F 30/27G06F 40/279G06F 40/30G06N 3/045+9 more

AI classification

Machine learning1.00
Vision1.00
Planning1.00
Natural language1.00
AI hardware0.30
Knowledge representation0.04
Speech0.00
Evolutionary computation0.00

Ownership

BENTLEY SYSTEMS, INCORPORATED

assignment · 542730276

Assignors

JAHJAH, KARL-ALEXANDRE, BERGERON, HUGO, LAPOINTE, MARC-ANDRÉ, PAGE, KAUSTUBH, RAUSCH-LAROUCHE, EVAN

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

From the same owner

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