Empowering Machine Learning Development with Service-Oriented Computing Principles

Open Access
Authors
Publication date 2023
Host editors
  • M. Aiello
  • J. Barzen
  • S. Dustdar
  • F. Leymann
Book title Service-Oriented Computing - 17th Symposium and Summer School, SummerSOC 2023, Revised Selected Papers
Book subtitle 17th Symposium and Summer School, SummerSOC 2023, Heraklion, Crete, Greece, June 25–July 1, 2023 : revised selected papers
ISBN
  • 9783031457272
ISBN (electronic)
  • 9783031457289
Series Communications in Computer and Information Science
Event The 17th Advanced Summer School on Service-Oriented Computing, SummerSOC 2023
Pages (from-to) 24-44
Number of pages 21
Publisher Cham: Springer
Organisations
  • Faculty of Science (FNWI) - Informatics Institute (IVI)
Abstract

Despite software industries’ successful utilization of Service-Oriented Computing (SOC) to streamline software development, machine learning (ML) development has yet to fully integrate these practices. This disparity can be attributed to multiple factors, such as the unique challenges inherent to ML development and the absence of a unified framework for incorporating services into this process. In this paper, we shed light on the disparities between services-oriented computing and machine learning development. We propose “Everything as a Module” (XaaM), a framework designed to encapsulate every ML artifacts including models, code, data, and configurations as individual modules, to bridge this gap. We propose a set of additional steps that need to be taken to empower machine learning development using services-oriented computing via an architecture that facilitates efficient management and orchestration of complex ML systems. By leveraging the best practices of services-oriented computing, we believe that machine learning development can achieve a higher level of maturity, improve the efficiency of the development process, and ultimately, facilitate the more effective creation of machine learning applications.

Document type Conference contribution
Language English
Published at https://doi.org/10.1007/978-3-031-45728-9_2
Other links https://www.scopus.com/pages/publications/85175873712
Downloads
978-3-031-45728-9_2 (Final published version)
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