The patent badge is an abbreviated version of the USPTO patent document. The patent badge does contain a link to the full patent document.

The patent badge is an abbreviated version of the USPTO patent document. The patent badge covers the following: Patent number, Date patent was issued, Date patent was filed, Title of the patent, Applicant, Inventor, Assignee, Attorney firm, Primary examiner, Assistant examiner, CPCs, and Abstract. The patent badge does contain a link to the full patent document (in Adobe Acrobat format, aka pdf). To download or print any patent click here.

Date of Patent:
Mar. 25, 2025

Filed:

Dec. 05, 2023
Applicant:

Microsoft Technology Licensing, Llc, Redmond, WA (US);

Inventors:

Jennifer Rose Guriel, Kirkland, WA (US);

Abdelrahman Khaled Abdo Mohamed, Seattle, WA (US);

Mingqi Wu, Bellevue, WA (US);

Gershom Payzer, Redmond, WA (US);

Christopher Ian Charla, Seattle, WA (US);

Madeline Jaye Whisenant, Seattle, WA (US);

Bridgette Marie Kuehn, Seattle, WA (US);

Jianxun Lian, Beijing, CN;

Licheng Pan, Hangzhou, CN;

Assignee:
Attorneys:
Primary Examiner:
Int. Cl.
CPC ...
G06F 16/45 (2019.01); G06F 40/40 (2020.01);
U.S. Cl.
CPC ...
G06F 16/45 (2019.01); G06F 40/40 (2020.01);
Abstract

This disclosure relates to a content cluster system that provides a framework for leveraging large language models (LLMs) to tag content items (e.g., interactive multimedia content items, such as gaming content items) with attribute tags and, based on attribute tags for related content items, generating cluster descriptions of a cluster of content items. Features of the content cluster system involve tagging content items, determining multi-dimensional embeddings for the content items, and clustering the content items based on proximity of values contained within the multi-dimensional embeddings. The content cluster system may further utilize the LLM to generate one or more cluster descriptions based on the associated tags to create a more creative and dynamic representation of related groupings of titles (e.g., gaming titles). By utilizing LLMs and machine learning resources, the content cluster system provides a scalable approach to conventional approaches in determining and presenting groupings of titles.


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