CHANNEL RECOMMENDATIONS USING MACHINE LEARNING

Techniques for generating user profile data including one or more frequent channels, related users, and/or related topics within a communication platform are discussed herein. In some examples, a machine-learning model can receive user interaction data (messages sent, messages read, channel posts, d...

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Bibliographische Detailangaben
Hauptverfasser: Huang, Huai Yu Frederick, Maurer, Aaron, Condon, Fiona, Ni, Lichen, Jablon, Kyle, Hayman, Maxwell
Format: Patent
Sprache:eng
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Beschreibung
Zusammenfassung:Techniques for generating user profile data including one or more frequent channels, related users, and/or related topics within a communication platform are discussed herein. In some examples, a machine-learning model can receive user interaction data (messages sent, messages read, channel posts, documents shared, frequent key words used, etc.) associated with the communication platform and output one or more frequent channels, related users, and/or related topics. The communication platform may then associate the one or more frequent channels, related users, and/or related topics with the user's profile data. In some examples, the communication platform may present different frequent channels, related users, and/or related topics associated with a profile page based on interaction action associated with the user account viewing the profile page.