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US Patent 11113744 Personalized item recommendations through large-scale deep-embedding architecture with real-time inferencing

Patent 11113744 was granted and assigned to Walmart on September, 2021 by the United States Patent and Trademark Office.

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Is a
Patent
Patent
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Patent attributes

Patent Applicant
Walmart
Walmart
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Current Assignee
Walmart
Walmart
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Patent Jurisdiction
United States Patent and Trademark Office
United States Patent and Trademark Office
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Patent Number
111137440
Patent Inventor Names
Aditya Mantha0
Kannan Achan0
Praveenkumar Kanumala0
Shubham Gupta0
Stephen Dean Guo0
Yokila Arora0
Date of Patent
September 7, 2021
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Patent Application Number
202001300
Date Filed
January 30, 2020
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Patent Citations Received
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US Patent 11836782 Personalized item recommendations through large-scale deep-embedding architecture with real-time inferencing
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US Patent 12093979 Systems and methods for generating real-time recommendations
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Patent abstract

A method including training two sets of item embeddings for items in an item catalog and a set of user embeddings for users, using a triple embeddings model, with triplets. The triplets each can include a respective first user of the users, a respective first item from the item catalog, and a respective second item from the item catalog, in which the respective first user selected the respective first item and the respective second item in a respective same basket. The method also can include generating an approximate nearest neighbor index for the two sets of item embeddings. The method additionally can include receiving a basket including basket items selected by a user from the item catalog. The method further can include grouping the basket items of the basket into categories based on a respective item category of each of the basket items. The method additionally can include randomly sampling a respective anchor item from each of the categories. The method further can include generating a respective list of complementary items for the respective anchor item for the each of the categories based on a respective lookup call to the approximate nearest neighbor index using a query vector associated with the user and the respective anchor item. The method additionally can include building a list of personalized recommended items for the user based on the respective lists of the complementary items for the categories. The method further can include sending instructions to display, to the user on a user interface of a user device, at least a portion of the list of personalized recommended items. Other embodiments are disclosed.

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