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US Patent 10430690 Machine learning predictive labeling system

Patent 10430690 was granted and assigned to Sas (company) on October, 2019 by the United States Patent and Trademark Office.

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Patent
Patent
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Patent attributes

Patent Applicant
Sas (company)
Sas (company)
0
Current Assignee
Sas (company)
Sas (company)
0
Patent Jurisdiction
United States Patent and Trademark Office
United States Patent and Trademark Office
0
Patent Number
104306900
Patent Inventor Names
Xu Chen0
Date of Patent
October 1, 2019
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Patent Application Number
164001570
Date Filed
May 1, 2019
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Patent Citations
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US Patent 10127477 Distributed event prediction and machine learning object recognition system
Patent Citations Received
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US Patent 11983171 Using multiple trained models to reduce data labeling efforts
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US Patent 11579575 Inverse reinforcement learning with model predictive control
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US Patent 10956825 Distributable event prediction and machine learning recognition system
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US Patent 11714802 Using multiple trained models to reduce data labeling efforts
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US Patent 11763945 System and method for labeling medical data to generate labeled training data
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US Patent 10521734 Machine learning predictive labeling system
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US Patent 10635947 Distributable classification system
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US Patent 10832174 Distributed hyperparameter tuning system for active machine learning
...
Patent Primary Examiner
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Lut Wong
0
Patent abstract

A computing device predicts an event or classifies an observation. A trained labeling model is executed with unlabeled observations to define a label distribution probability matrix. A label is selected for each observation. A mean observation vector and a covariance matrix are computed from the unlabeled observations selected to have each respective label. A number of eigenvalues that have a smallest value is selected from each covariance matrix and used to define a null space for each respective label. A distance value is computed for a distance vector computed to the mean observation vector and projected into the null space associated with the label selected for each respective observation. A diversity rank is determined for each respective observation based on minimum computed distance values. A predefined number of observations having highest values for the diversity rank are included in labeled observations and removed from the unlabeled observations.

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