Invention Application
- Patent Title: ADVERSARIAL ATTACK PREVENTION AND MALWARE DETECTION SYSTEM
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Application No.: US18074260Application Date: 2022-12-02
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Publication No.: US20230119658A1Publication Date: 2023-04-20
- Inventor: Li Chen
- Applicant: Intel Corporation
- Applicant Address: US CA Santa Clara
- Assignee: Intel Corporation
- Current Assignee: Intel Corporation
- Current Assignee Address: US CA Santa Clara
- Main IPC: G06F21/56
- IPC: G06F21/56 ; G06N20/00

Abstract:
Systems and methods may be used to classify incoming testing data, such as binaries, function calls, an application package, or the like, to determine whether the testing data is contaminated using an adversarial attack or benign while training a machine learning system to detect malware. A method may include using a sparse coding technique or a semi-supervised learning technique to classify the testing data. Training data may be used to represent the testing data using the sparse coding technique or to train the supervised portion of the semi-supervised learning technique.
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