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Serialized Interacting Mixed Membership Stochastic Block Model

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  • Additional Information
    • Contributors:
      Entrepôts, Représentation et Ingénierie des Connaissances (ERIC); Université Lumière - Lyon 2 (UL2)-Université Claude Bernard Lyon 1 (UCBL); Université de Lyon-Université de Lyon
    • Publication Information:
      HAL CCSD
      IEEE
    • Publication Date:
      2022
    • Collection:
      HAL Lyon 1 (University Claude Bernard Lyon 1)
    • Subject Terms:
    • Abstract:
      International audience ; Last years have seen a regain of interest for the use of stochastic block modeling (SBM) in recommender systems. These models are seen as a flexible alternative to tensor decomposition techniques that are able to handle labeled data. Recent works proposed to tackle discrete recommendation problems via SBMs by considering larger contexts as input data and by adding second order interactions between contexts' related elements. In this work, we show that these models are all special cases of a single global framework: the Serialized Interacting Mixed membership Stochastic Block Model (SIMSBM). It allows to model an arbitrarily large context as well as an arbitrarily high order of interactions. We demonstrate that SIMSBM generalizes several recent SBM-based baselines. Besides, we demonstrate that our formulation allows for an increased predictive power on six real-world datasets.
    • Relation:
      hal-03778896; https://hal.science/hal-03778896; https://hal.science/hal-03778896/document; https://hal.science/hal-03778896/file/Accepted___ICDM_22___SIMSBM__full_version_%20%281%29.pdf
    • Accession Number:
      10.1109/ICDM54844.2022.00145
    • Online Access:
      https://doi.org/10.1109/ICDM54844.2022.00145
      https://hal.science/hal-03778896
      https://hal.science/hal-03778896/document
      https://hal.science/hal-03778896/file/Accepted___ICDM_22___SIMSBM__full_version_%20%281%29.pdf
    • Rights:
      info:eu-repo/semantics/OpenAccess
    • Accession Number:
      edsbas.20836959