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案件記録

SYSTEMS AND METHODS FOR CONTROLLING COMPUTING SYSTEMS ASSOCIATED WITH NETWORK OPERATIONS

発明審査中
20請求項 · 3 独立
§ Ⅰ

案件概要

発明者

Michael Gottlieb; Alisa Noll; Jonathan Konrad Pedde; Panayiotis Thomakos; David Brace; Travis Rahe; Daniel Williams

IPC分類

H4L 9/40H4L 41/16

CPC分類

H4L63/1433H4L41/16H4L63/1416

Presented herein are systems and methods of training machine learning (ML) models to determine likelihoods of fraud in network operations caused by computing systems. A server may generate training data to include (i) a digital fingerprint associated with an identity of a computing system of a plurality of computing systems and (ii) a plurality of network operation metrics associated with the computing system. The server may label the training data to indicate whether fraudulence is caused by the computing system. The server may execute, using the training data, a ML model having a plurality of weights to generate a likelihood of fraud caused by the computing system. The server may compare the likelihood of fraud with labeled training data to determine an error metric in accordance with a loss function. The server may update at least one of the plurality of weights using the error metric.

原文(中国語)

Presented herein are systems and methods of training machine learning (ML) models to determine likelihoods of fraud in network operations caused by computing systems. A server may generate training data to include (i) a digital fingerprint associated with an identity of a computing system of a plurality of computing systems and (ii) a plurality of network operation metrics associated with the computing system. The server may label the training data to indicate whether fraudulence is caused by the computing system. The server may execute, using the training data, a ML model having a plurality of weights to generate a likelihood of fraud caused by the computing system. The server may compare the likelihood of fraud with labeled training data to determine an error metric in accordance with a loss function. The server may update at least one of the plurality of weights using the error metric.

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