PEER ASSISTED DISTRIBUTED ARCHITECTURE FOR TRAINING MACHINE LEARNING MODELS

Patent №

US 11,295,239

Granted

2022-04-05

Filed 2019

Owner

INTERNATIONAL BUSINESS MACHINES CORPORATION

AI components

4

ml · kr · planning · hardware

Assignment

Recorded

Dataset

AIPD

2023_r1 edition

Application

16386561

Techniques for distributing the training of machine learning models across a plurality of computing devices are presented. An example method includes receiving, from a computing device in a distributed computing environment, a request for a set of outstanding jobs for training part of a machine learning model. A system transmits, to the computing device, information identifying the set of outstanding jobs. The system receives, from the computing device, a selected job for execution on the computing device from the set of outstanding jobs. A chunk of training data associated with the selected job and one or more parameters associated with the selected job may be transmitted to the computing device, and the system may take one or more actions with respect to the chunk of data associated with the selected job based on a response from the computing device.

Machine learningKnowledge representationPlanningAI hardwareG06N 20/00H04L 67/125G06F 9/4887G06F 9/5027H04L 67/10H04L 67/61

AI classification

Machine learning1.00
AI hardware1.00
Planning0.95
Knowledge representation0.74
Natural language0.29
Vision0.12
Evolutionary computation0.01
Speech0.00

Ownership

INTERNATIONAL BUSINESS MACHINES CORPORATION

assignment · 489100006

Assignors

BHATTACHARJEE, BISHWARANJAN, CASTRO, PAUL C, MUTHUSAMY, VINOD, ISAHAGIAN, VATCHE, SLOMINSKI, ALEKSANDER

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

From the same owner

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