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US Patent 10270788 Machine learning based anomaly detection

Patent 10270788 was granted and assigned to Netskope on April, 2019 by the United States Patent and Trademark Office.

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Contents

Is a
Patent
Patent

Patent attributes

Patent Applicant
Netskope
Netskope
Current Assignee
Netskope
Netskope
Patent Jurisdiction
United States Patent and Trademark Office
United States Patent and Trademark Office
Patent Number
10270788
Date of Patent
April 23, 2019
Patent Application Number
15256483
Date Filed
September 2, 2016
Patent Citations Received
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US Patent 12126655 Machine learning based policy engine preference for data access
0
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US Patent 12079312 Machine learning outlier detection using weighted histogram-based outlier scoring (W-HBOS)
0
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US Patent 12088600 Machine learning system for detecting anomalies in hunt data
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US Patent 11509674 Generating machine learning data in salient regions of a feature space
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US Patent 11233815 Vulnerability remediation based on tenant specific policy
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US Patent 10623423 Systems and methods for intelligently implementing a machine learning-based digital threat mitigation service
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US Patent 11748568 Machine learning-based selection of metrics for anomaly detection
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US Patent 11310141 Anomaly detection of model performance in an MLOps platform
...
Patent Primary Examiner
‌
Theodore C Parsons
Patent abstract

The technology disclosed relates to machine learning based anomaly detection. In particular, it relates to constructing activity models on per-tenant and per-user basis using an online streaming machine learner that transforms an unsupervised learning problem into a supervised learning problem by fixing a target label and learning a regressor without a constant or intercept. Further, it relates to detecting anomalies in near real-time streams of security-related events of one or more tenants by transforming the events in categorized features and requiring a loss function analyzer to correlate, essentially through an origin, the categorized features with a target feature artificially labeled as a constant. It further includes determining an anomaly score for a production event based on calculated likelihood coefficients of categorized feature-value pairs and a prevalencist probability value of the production event comprising the coded features-value pairs.

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