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US Patent 11562297 Automated input-data monitoring to dynamically adapt machine-learning techniques

Patent 11562297 was granted and assigned to Apple (company) on January, 2023 by the United States Patent and Trademark Office.

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Is a
Patent
Patent
0

Patent attributes

Patent Applicant
Apple (company)
Apple (company)
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Current Assignee
Apple (company)
Apple (company)
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Patent Jurisdiction
United States Patent and Trademark Office
United States Patent and Trademark Office
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Patent Number
115622970
Patent Inventor Names
Yu-Chung Hsiao0
Vishwas Kulkarni0
Timothy S. Paek0
Anatoly D. Adamov0
Moises Goldszmidt0
Julia R. Reisler0
Juan C. Garcia0
Pavan Chitta0
Date of Patent
January 24, 2023
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Patent Application Number
168758250
Date Filed
May 15, 2020
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Patent Citations
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US Patent 11217226 System to detect and reduce understanding bias in intelligent virtual assistants
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US Patent 10726356 Target variable distribution-based acceptance of machine learning test data sets
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US Patent 10754764 Validation sets for machine learning algorithms
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US Patent 10916333 Artificial intelligence system for enhancing data sets used for training machine learning-based classifiers
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US Patent 11250342 Systems and methods for secondary knowledge utilization in machine learning
Patent Citations Received
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US Patent 12026468 Out-of-domain data augmentation for natural language processing
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Patent Primary Examiner
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Lewis G West
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CPC Code
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G06K 9/6262
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G06K 9/6256
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G06K 9/6268
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G06N 20/10
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G06N 7/005
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G06N 5/003
0
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G06N 20/00
0
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G06N 20/20
0
...

Systems and methods are disclosed for triggering an update to a machine-learning model upon detecting that a distribution of particular (e.g., recently collected) input data set is sufficiently different from a distribution training input data set used to train the model. The distributions may be determined to be sufficiently different when a classifier can identify to which distribution individual data elements belong (e.g., to at least a predetermined degree). An update to the machine-learning model can include morphing weights used by the model and/or retraining the model.

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