Modelling Session Activity with Neural Embedding

نویسندگان

  • Oren Barkan
  • Yael Brumer
  • Noam Koenigstein
چکیده

Neural embedding techniques are being applied in a growing number of machine learning applications. In this work, we demonstrate a neural embedding technique to model users’ session activity. Specifically, we consider a dataset collected from Microsoft’s App Store consisting of user sessions that include sequential click actions and item purchases. Our goal is to learn a latent manifold that captures users’ session activity and can be utilized for contextual recommendations in an online app store.

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تاریخ انتشار 2016