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US Patent 10956825 Distributable event prediction and machine learning recognition system

Patent 10956825 was granted and assigned to Sas (company) on March, 2021 by the United States Patent and Trademark Office.

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Contents

Is a
Patent
Patent

Patent attributes

Patent Applicant
Sas (company)
Sas (company)
Current Assignee
Sas (company)
Sas (company)
Patent Jurisdiction
United States Patent and Trademark Office
United States Patent and Trademark Office
Patent Number
10956825
Date of Patent
March 23, 2021
Patent Application Number
16904818
Date Filed
June 18, 2020
Patent Citations
‌
US Patent 10430690 Machine learning predictive labeling system
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US Patent 10546246 Enhanced kernel representation for processing multimodal data
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US Patent 10521734 Machine learning predictive labeling system
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US Patent 10685285 Mirror deep neural networks that regularize to linear networks
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US Patent 10127477 Distributed event prediction and machine learning object recognition system
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US Patent 10275690 Machine learning predictive labeling system
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US Patent 10354204 Machine learning predictive labeling system
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US Patent 10360517 Distributed hyperparameter tuning system for machine learning
Patent Citations Received
‌
US Patent 11481689 Platforms for developing data models with machine learning model
Patent Primary Examiner
‌
Miranda M Huang
Patent abstract

Data is classified using semi-supervised data. A weight matrix is computed using a kernel function applied to observation vectors. A decomposition of the computed weight matrix is performed. A predefined number of eigenvectors is selected from the decomposed weight matrix to define a decomposition matrix. (A) A gradient value is computed as a function of the defined decomposition matrix, sparse coefficients, and a label vector. (B) A value of each coefficient of the sparse coefficients is updated based on the gradient value. (A) and (B) are repeated until a convergence parameter value indicates the sparse coefficients have converged. A classification matrix is defined using the converged sparse coefficients. The target variable value is determined and output for each observation vector based on the defined classification matrix to update the label vector and defined to represent the label for a respective unclassified observation vector.

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