BEHAVIORAL PREDICTION AND BOUNDARY SETTINGS, CONTROL AND SAFETY ASSURANCE OF ML & AI SYSTEMS

Patent №

US 11,468,350

Granted

2022-10-11

Filed 2021

Owner

UMNAI LIMITED

Lab

AI components

3

kr · planning · hardware

Assignment

Recorded

Dataset

AIPD

2023_r1 edition

Application

17525602

Typical autonomous systems implement black-box models for tasks such as motion detection and triaging failure events, and as a result are unable to provide an explanation for its input features. An explainable framework may utilize one or more explainable white-box architectures. Explainable models allow for a new set of capabilities in industrial, commercial, and non-commercial applications, such as behavioral prediction and boundary settings, and therefore may provide additional safety mechanisms to be a part of the control loop of automated machinery, apparatus, and systems. An embodiment may provide a practical solution for the safe operation of automated machinery and systems based on the anticipation and prediction of consequences. The ability to guarantee a safe mode of operation in an autonomous system which may include machinery and robots which interact with human beings is a major unresolved problem which may be solved by an exemplary explainable framework.

Knowledge representationPlanningAI hardwareG06N 5/045G06N 5/01G06N 5/048G06N 20/00

AI classification

Planning1.00
Knowledge representation1.00
AI hardware0.99
Machine learning0.28
Vision0.17
Evolutionary computation0.16
Speech0.01
Natural language0.00

Ownership

UMNAI LIMITED

assignment · 581470300

Assignors

DALLI, ANGELO, GRECH, MATTHEW, PIRRONE, MAURO

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

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