SECURE PARAMETER MERGING USING HOMOMORPHIC ENCRYPTION FOR SWARM LEARNING

Patent №

US 11,218,293

Granted

2022-01-04

Filed 2020

Owner

HEWLETT PACKARD ENTERPRISE DEVELOPMENT LP

Lab

AI components

2

ml · hardware

Assignment

Recorded

Dataset

AIPD

2023_r1 edition

Application

16773555

Systems and methods are provided for implementing swarm learning while using blockchain technology and election/voting mechanisms to ensure data privacy. Nodes may train local instances of a machine learning model using local data, from which parameters are derived or extracted. Those parameters may be encrypted and persisted until a merge leader is elected that can merge the parameters using a public key generated by an external key manager. A decryptor that is not the merge leader can be elected to decrypt the merged parameter using a corresponding private key, and the decrypted merged parameter can then be shared amongst the nodes, and applied to their local models. This process can be repeated until a desired level of learning has been achieved. The public and private keys are never revealed to the same node, and may be permanently discarded after use to further ensure privacy.

Machine learningAI hardwareH04L 9/0637G06F 21/602G06F 21/64G06N 3/006G06N 20/00G06N 20/20H04L 9/008H04L 9/0819+9 more

AI classification

Machine learning0.97
AI hardware0.90
Planning0.21
Knowledge representation0.04
Evolutionary computation0.04
Vision0.01
Natural language0.00
Speech0.00

Ownership

HEWLETT PACKARD ENTERPRISE DEVELOPMENT LP

assignment · 516340361

Assignors

MANAMOHAN, SATHYANARAYANAN, GARG, VISHESH, SHASTRY, KRISHNAPRASAD LINGADAHALLI, MUKHERJEE, SAIKAT

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

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