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US Patent 10990677 Adversarial quantum machine learning

Patent 10990677 was granted and assigned to Microsoft on April, 2021 by the United States Patent and Trademark Office.

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Contents

Is a
Patent
Patent
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Patent attributes

Patent Applicant
Microsoft
Microsoft
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Current Assignee
Microsoft
Microsoft
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Patent Jurisdiction
United States Patent and Trademark Office
United States Patent and Trademark Office
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Patent Number
109906770
Patent Inventor Names
Nathan O. Wiebe0
Ram Shankar Siva Kumar0
Date of Patent
April 27, 2021
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Patent Application Number
156246510
Date Filed
June 15, 2017
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Patent Citations Received
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US Patent 12061465 Automatic system anomaly detection
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US Patent 11507872 Hybrid quantum-classical computer system and method for performing function inversion
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US Patent 11537928 Quantum-classical system and method for matrix computations
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US Patent 11558403 Quantum computing machine learning for security threats
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US Patent 11681774 Classically-boosted quantum optimization
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US Patent 11983720 Mixed quantum-classical method for fraud detection with quantum feature selection
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US Patent 12007832 Restoring a system by load switching to an alternative cloud instance and self healing
0
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US Patent 11488049 Hybrid quantum-classical computer system and method for optimization
Patent Primary Examiner
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Ponnoreay Pich
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Patent abstract

In this disclosure, a number of ways that quantum information can be used to help make quantum classifiers more secure or private are disclosed. In particular embodiments, a form of robust principal component analysis is disclosed that can tolerate noise intentionally introduced to a quantum training set. Under some circumstances, this algorithm can provide an exponential speedup relative to other methods. Also disclosed is an example quantum approach for bagging and boosting that can use quantum superposition over the classifiers or splits of the training set to aggregate over many more models than would be possible classically. Further, example forms of k-means clustering are disclosed that can be used to prevent even a powerful adversary from even learning whether a participant even contributed data to the clustering algorithm.

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