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US Patent 10510003 Stochastic gradient boosting for deep neural networks

Patent 10510003 was granted and assigned to Capital One on December, 2019 by the United States Patent and Trademark Office.

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Is a
Patent
Patent
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Patent attributes

Patent Applicant
Capital One
Capital One
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Current Assignee
Capital One
Capital One
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Patent Jurisdiction
United States Patent and Trademark Office
United States Patent and Trademark Office
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Patent Number
105100030
Patent Inventor Names
Oluwatobi Olabiyi0
Christopher Larson0
Erik T. Mueller0
Date of Patent
December 17, 2019
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Patent Application Number
162932290
Date Filed
March 5, 2019
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Patent Citations Received
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US Patent 11694116 Vehicle resiliency, driving feedback and risk assessment using machine learning-based vehicle wear scoring
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US Patent 11715036 Updating weight values in a machine learning system
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Patent Primary Examiner
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Stanley K. Hill
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Patent abstract

Aspects described herein may allow for the application of stochastic gradient boosting techniques to the training of deep neural networks by disallowing gradient back propagation from examples that are correctly classified by the neural network model while still keeping correctly classified examples in the gradient averaging. Removing the gradient contribution from correctly classified examples may regularize the deep neural network and prevent the model from overfitting. Further aspects described herein may provide for scheduled boosting during the training of the deep neural network model conditioned on a mini-batch accuracy and/or a number of training iterations. The model training process may start un-boosted, using maximum likelihood objectives or another first loss function. Once a threshold mini-batch accuracy and/or number of iterations are reached, the model training process may begin using boosting by disallowing gradient back propagation from correctly classified examples while continue to average over all mini-batch examples.

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