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US Patent 10127477 Distributed event prediction and machine learning object recognition system

Patent 10127477 was granted and assigned to Sas (company) on November, 2018 by the United States Patent and Trademark Office.

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Is a
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
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Patent Number
101274770
Patent Inventor Names
Tao Wang0
Xu Chen0
Date of Patent
November 13, 2018
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Patent Application Number
156868630
Date Filed
August 25, 2017
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Patent Citations Received
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US Patent 11443236 Enhancing fairness in transfer learning for machine learning models with missing protected attributes in source or target domains
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US Patent 10956825 Distributable event prediction and machine learning recognition system
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US Patent 11068781 Temporal ensembling for semi-supervised learning
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US Patent 11693140 Identifying hydrocarbon reserves of a subterranean region using a reservoir earth model that models characteristics of the region
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US Patent 11830240 Adversarial training method for noisy labels
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US Patent 11486230 Allocating resources for implementing a well-planning process
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US Patent 10430690 Machine learning predictive labeling system
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US Patent 10521734 Machine learning predictive labeling system
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Patent Primary Examiner
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Lut Wong
0
Patent abstract

A computing device predicts occurrence of an event or classifies an object using distributed unlabeled data. Supervised data that includes a labeled subset of a plurality of observation vectors is identified. A total number of threads that will perform labeling of an unlabeled subset of the plurality of observation vectors is determined. The identified supervised data is uploaded to each thread of the total number of threads. Unlabeled observation vectors are randomly select from the unlabeled subset of the plurality of observation vectors to allocate to each thread of the total number of threads. The randomly selected, unlabeled observation vectors are uploaded to each thread of the total number of threads based on the allocation. The value of the target variable for each observation vector of the unlabeled subset of the plurality of observation vectors is determined based on a converged classification matrix and output to a labeled dataset.

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