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Modelling Audiological Preferences using Federated Learning

  • Tiberiu Ioan Szatmari
  • , Michael Kai Petersen
  • , MacIej Jan Korzepa
  • , Thanassis Giannetsos
  • Technical University of Denmark
  • Demant A/S
  • Eriksholm Research Centre

Research output: Chapter in Book/Report/Conference proceedingArticle in proceedingsResearchpeer-review

Abstract

Patient-centric adaptation of audiological preferences across different contexts is a challenging task, as traditional clinical measurements of audibility do not reflect the cognitive perception of speech nor binaural loudness of sounds in different contexts. Smartphone-based machine learning personalization systems have the potential to address this issue in real-world listening scenarios, however, the necessary training datasets are not currently available. As hearing healthcare medical data is of a highly private nature, a framework is proposed, combining federated learning (FL) and secret sharing in the context of hearing aids with the goal of training models locally while preserving the individual user's privacy. We demonstrate an application of such a system with a simplified domain defined by the MNIST digit classification task.

Original languageEnglish
Title of host publicationProceedings of Adjunct Publication of the 28th ACM Conference on User Modeling, Adaptation and Personalization
PublisherAssociation for Computing Machinery
Publication date14 Jul 2020
Pages187-190
ISBN (Electronic)9781450367110
DOIs
Publication statusPublished - 14 Jul 2020
Event28th ACM International Conference on User Modeling, Adaptation, and Personalization - Genoa, Italy
Duration: 14 Jul 202017 Jul 2020

Conference

Conference28th ACM International Conference on User Modeling, Adaptation, and Personalization
Country/TerritoryItaly
CityGenoa
Period14/07/202017/07/2020
SponsorAssociation for Computing Machinery, Association for Computing Machinery

UN SDGs

This output contributes to the following UN Sustainable Development Goals (SDGs)

  1. SDG 3 - Good Health and Well-being
    SDG 3 Good Health and Well-being

Keywords

  • Federated learning
  • Hearing healthcare
  • Personalization
  • Privacy
  • Recommender systems
  • Secretsharing

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