FAIRNESS AND OUTPUT AUTHENTICITY FOR SECURE DISTRIBUTED MACHINE LEARNING

Fairness and output authenticity for secure distributed machine learning is provided by way of an encrypted output of a garbled circuit which is simultaneously provided to a garbler and an evaluator by an output discloser. Related systems, methods and articles of manufacture are also disclosed.

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Bibliographische Detailangaben
1. Verfasser: GOMEZ, Laurent Y
Format: Patent
Sprache:eng
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Beschreibung
Zusammenfassung:Fairness and output authenticity for secure distributed machine learning is provided by way of an encrypted output of a garbled circuit which is simultaneously provided to a garbler and an evaluator by an output discloser. Related systems, methods and articles of manufacture are also disclosed.