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US Patent 11516158 Neural network-facilitated linguistically complex message generation systems and methods

Patent 11516158 was granted and assigned to LeadIQ on November, 2022 by the United States Patent and Trademark Office.

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Contents

Is a
Patent
Patent

Patent attributes

Patent Applicant
LeadIQ
LeadIQ
Current Assignee
LeadIQ
LeadIQ
Patent Jurisdiction
United States Patent and Trademark Office
United States Patent and Trademark Office
Patent Number
11516158
Date of Patent
November 29, 2022
Patent Application Number
17725433
Date Filed
April 20, 2022
Patent Citations
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US Patent 10681739 System and method for traffic control for machine type communications in a wireless communications system
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US Patent 10929469 Content subject suggestions
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US Patent 11030515 Determining semantically diverse responses for providing as suggestions for inclusion in electronic communications
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US Patent 11055497 Natural language generation of sentence sequences from textual data with paragraph generation model
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US Patent 11157693 Stylistic text rewriting for a target author
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US Patent 11321580 Item type discovery and classification using machine learning
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US Patent 11216510 Processing an incomplete message with a neural network to generate suggested messages
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US Patent 10049106 Natural language generation through character-based recurrent neural networks with finite-state prior knowledge
...
Patent Citations Received
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US Patent 12111859 Enterprise generative artificial intelligence architecture
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US Patent 11922541 Enhancement of machine-generated product image
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US Patent 11928319 Interactive canvas tool for multimodal personalized content generation
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US Patent 11947902 Efficient multi-turn generative AI model suggested message generation
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US Patent 11962546 Leveraging inferred context to improve suggested messages
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US Patent 11983488 Systems and methods for language model-based text editing
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0
0
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Patent Primary Examiner
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Kevin Ky
CPC Code
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H04L 51/02
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G06N 3/0454
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G06F 40/253
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G06F 40/35

Provided are methods and systems for automated or semi-automated generation of complex messages. Provided systems include neural network(s) that are trained with at least an initial training set including message records having specific characteristics, such as size and form characteristics, and recognize certain user inputted content as “instructional prompts.” The neural network(s) use the instructional prompts, training set, and other prompts to generate a distribution of semantic element options for each semantic element the system determines to include in system drafted message(s). The system selects from among such options to generate a plurality of draft messages which are presented to users for evaluation, editing, or transmission, with the instructional prompts treated as priority content. The systems and methods include mechanisms for reviewing and changing the instructional prompts based on factors that can include the content of the system-generated draft messages before further iterations to enhance the accuracy of future messages.

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