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US Patent 12088600 Machine learning system for detecting anomalies in hunt data

Patent 12088600 was granted and assigned to Rapid7 on September, 2024 by the United States Patent and Trademark Office.

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Patent
Patent
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Patent attributes

Patent Applicant
Rapid7
Rapid7
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Current Assignee
Rapid7
Rapid7
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Patent Jurisdiction
United States Patent and Trademark Office
United States Patent and Trademark Office
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Patent Number
120886000
Patent Inventor Names
Vasudha Shivamoggi0
Jocelyn Beauchesne0
John Lim Oh0
Roy Donald Hodgman0
Date of Patent
September 10, 2024
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Patent Application Number
170244810
Date Filed
September 17, 2020
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Patent Citations
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US Patent 9843596 Anomaly detection in dynamically evolving data and systems
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US Patent 9906405 Anomaly detection and alarming based on capacity and placement planning
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US Patent 9910941 Test case generation
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US Patent 10235601 Method for image analysis
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US Patent 10270788 Machine learning based anomaly detection
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US Patent 10311368 Analytic system for graphical interpretability of and improvement of machine learning models
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US Patent 10372910 Method for predicting and characterizing cyber attacks
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US Patent 10599957 Systems and methods for detecting data drift for data used in machine learning models
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...
Patent Primary Examiner
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Daniel B Potratz
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Patent abstract

An anomaly detection system is disclosed capable of reporting anomalous processes or hosts in a computer network using machine learning models trained using unsupervised training techniques. In embodiments, the system assigns observed processes to a set of process categories based on the file system path of the program executed by the process. The system extracts a feature vector for each process or host from the observation records and applies the machine learning models to the feature vectors to determine an outlier metric each process or host. The processes or hosts with the highest outlier metrics are reported as detected anomalies to be further examined by security analysts. In embodiments, the machine learnings models may be periodically retrained based on new observation records using unsupervised machine learning techniques. Accordingly, the system allows the models to learn from newly observed data without requiring the new data to be manually labeled by humans.

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