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US Patent 11893111 Defending machine learning systems from adversarial attacks

Patent 11893111 was granted and assigned to Harman International Industries on February, 2024 by the United States Patent and Trademark Office.

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Contents

Is a
Patent
Patent
0

Patent attributes

Patent Applicant
Harman International Industries
Harman International Industries
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Current Assignee
Harman International Industries
Harman International Industries
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Patent Jurisdiction
United States Patent and Trademark Office
United States Patent and Trademark Office
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Patent Number
118931110
Patent Inventor Names
Shachar Mendelowitz0
George Jose0
Aashish Kumar0
Nir Morgulis0
Sambuddha Saha0
Srinivas Kruthiveti Subrahmanyeswara Sai0
Alexander Kreines0
Date of Patent
February 6, 2024
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Patent Application Number
166961440
Date Filed
November 26, 2019
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Patent Citations
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US Patent 11636332 Systems and methods for defense against adversarial attacks using feature scattering-based adversarial training
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US Patent 10733292 Defending against model inversion attacks on neural networks
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US Patent 10944767 Identifying artificial artifacts in input data to detect adversarial attacks
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US Patent 10984272 Defense against adversarial attacks on neural networks
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US Patent 11526626 Facial anonymization with consistent facial attribute preservation in video
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US Patent 11657153 System and method for detecting an adversarial attack
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Patent Citations Received
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US Patent 12107885 Prompt injection classifier using intermediate results
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US Patent 12130943 Generative artificial intelligence model personally identifiable information detection and protection
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US Patent 12130917 GenAI prompt injection classifier training using prompt attack structures
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US Patent 12111926 Generative artificial intelligence model output obfuscation
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US Patent 12105844 Selective redaction of personally identifiable information in generative artificial intelligence model outputs
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US Patent 12026255 Machine learning model adversarial attack monitoring
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Patent Primary Examiner
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Dereena T Cattungal
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CPC Code
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G06N 3/04
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G06N 20/00
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G06F 21/554
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Patent abstract

Techniques are disclosed for detecting adversarial attacks. A machine learning (ML) system processes the input into and output of a ML model using an adversarial detection module that does not include a direct external interface. The adversarial detection module includes a detection model that generates a score indicative of whether the input is adversarial using, e.g., a neural fingerprinting technique or a comparison of features extracted by a surrogate ML model to an expected feature distribution for the output of the ML model. In turn, the adversarial score is compared to a predefined threshold for raising an adversarial flag. Appropriate remedial measures, such as notifying a user, may be taken when the adversarial score satisfies the threshold and raises the adversarial flag.

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