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US Patent 11785024 Deploying neural-trojan-resistant convolutional neural networks

Patent 11785024 was granted and assigned to University of South Florida on October, 2023 by the United States Patent and Trademark Office.

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Is a
Patent
Patent

Patent attributes

Patent Applicant
University of South Florida
University of South Florida
Current Assignee
University of South Florida
University of South Florida
Patent Jurisdiction
United States Patent and Trademark Office
United States Patent and Trademark Office
Patent Number
11785024
Patent Inventor Names
Robert Anthony Karam
Brooks Allen Olney
Date of Patent
October 10, 2023
Patent Application Number
17208616
Date Filed
March 22, 2021
Patent Citations
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US Patent 11218502 Few-shot learning based intrusion detection method of industrial control system
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US Patent 11652827 Virtualized intrusion detection and prevention in autonomous vehicles
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US Patent 11470098 Terminal device and controlling method thereof
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US Patent 9721097 Neural attention mechanisms for malware analysis
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US Patent 10429486 Method and system for learned communications signal shaping
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US Patent 10805317 Implementing network security measures in response to a detected cyber attack
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US Patent 10873456 Neural network classifiers for block chain data structures
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US Patent 11075934 Hybrid network intrusion detection system for IoT attacks
Patent Primary Examiner
‌
Kambiz Zand
Patent abstract

In some implementation, a system for identifying malicious attacks on a convolutional neural network (CNN) model includes a target computing system that performs classification of objects using a CNN model, and an attack identification computing system that identifies an injected neural attack. The attack identification computing system can be configured to generate, based on the CNN model and associated parameters, an ecosystem of CNN models by modifying original weights of the parameters associated with the CNN model; update the original weights of the parameters with the modified weights; store, in a secure data store, the updated weights of the parameters; generate, based on the updated weights, an update file for the CNN model; update, using the update file, the CNN model; and transmit the updated CNN model to a targeting computing system configured to detect neural attacks by an attacker computing system based on the updated CNN model.

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