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US Patent 12072917 Database generation from natural language text documents

Patent 12072917 was granted and assigned to DSilo on August, 2024 by the United States Patent and Trademark Office.

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Is a
Patent
Patent
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Patent attributes

Patent Applicant
DSilo
DSilo
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Current Assignee
DSilo
DSilo
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Patent Jurisdiction
United States Patent and Trademark Office
United States Patent and Trademark Office
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Patent Number
120729170
Patent Inventor Names
Lalit Gupta0
Sharad Malhautra0
Jaya Prakash Narayana Gutta0
Date of Patent
August 27, 2024
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Patent Application Number
181081160
Date Filed
February 10, 2023
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Patent Citations
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US Patent 10997503 Computationally efficient neural network architecture search
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US Patent 11113479 Utilizing a gated self-attention memory network model for predicting a candidate answer match to a query
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US Patent 11138248 Understanding user product queries in real time without using any rules
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US Patent 11216618 Query processing method, apparatus, server and storage medium
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US Patent 11288295 Utilizing word embeddings for term matching in question answering systems
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US Patent 11423068 Canonicalizing search queries to natural language questions
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US Patent 11431660 System and method for collaborative conversational AI
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US Patent 11520815 Database query generation using natural language text
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Patent Primary Examiner
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Matthew J Ellis
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CPC Code
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G06F 40/216
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G06F 40/279
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G06F 40/295
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G06F 40/30
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G06F 40/35
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G06F 16/355
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G06Q 50/18
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G06F 16/3347
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Patent abstract

Some embodiments may perform operations of a process that includes obtaining a natural language text document and use a machine learning model to generate a set of attributes based on a set of machine-learning-model-generated classifications in the document. The process may include performing hierarchical data extraction operations to populate the attributes, where different machine learning models may be used in sequence. The process may include using a pre-trained Bidirectional Encoder Representations from Transformers (BERT) model augmented with a pooling operation to determine a BERT output via a multi-channel transformer model to generate vectors on a per-sentence level or other per-text-section level. The process may include using a finer-grain model to extract quantitative or categorical values of interest, where the context of the per-sentence level may be retained for the finer-grain model.

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