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US Patent 11657333 Interpretability of deep reinforcement learning models in assistant systems

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Is a
Patent
Patent
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Patent attributes

Patent Applicant
Meta
Meta
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Current Assignee
Meta
Meta
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Patent Jurisdiction
United States Patent and Trademark Office
United States Patent and Trademark Office
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Patent Number
116573330
Date of Patent
May 23, 2023
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Patent Application Number
163897690
Date Filed
April 19, 2019
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Patent Citations
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US Patent 8027451 Electronic call assistants with shared database
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US Patent 8112275 System and method for user-specific speech recognition
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US Patent 8190627 Machine assisted query formulation
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US Patent 8195468 Mobile systems and methods of supporting natural language human-machine interactions
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US Patent 8478581 Interlingua, interlingua engine, and interlingua machine translation system
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US Patent 8504349 Text prediction with partial selection in a variety of domains
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US Patent 8560564 Hypertext browser assistant
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US Patent 8619767 Communication terminal and communication system
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...
Patent Primary Examiner
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Minh Chau Nguyen
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CPC Code
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G06N 20/20
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G06N 3/08
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G06Q 50/01
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In one embodiment, a method includes training a target machine-learning model iteratively by accessing training data of content objects, training an intermediate machine-learning model that outputs contextual evaluation measurements based on the training data, generating state-indications associated with the training data, wherein the state-indications comprise user-intents, system actions, and user actions, training the target machine-learning model based on the contextual evaluation measurements, the state-indications, and an action set comprising possible system actions, extracting rules based on the target machine-learning model by a sequential pattern-mining model, generating synthetic training data based on the rules, updating the training data by adding the synthetic training data to the training data, determining if a completion condition is reached for the training, and if the completion condition is reached returning the target machine-learning model, else repeating the iterative training of the target machine-learning model.

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