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Novel algorithms based on forward-backward splitting technique: effective methods for regression and classification

  • Yunus Atalan,
  • Emirhan Hacıoğlu,
  • Müzeyyen Ertürk,
  • Faik Gürsoy,
  • Gradimir V. Milovanović

摘要

In this paper, we introduce two novel forward-backward splitting algorithms (FBSAs) for nonsmooth convex minimization. We provide a thorough convergence analysis, emphasizing the new algorithms and contrasting them with existing ones. Our findings are validated through a numerical example. The practical utility of these algorithms in real-world applications, including machine learning for tasks such as classification, regression, and image deblurring reveal that these algorithms consistently approach optimal solutions with fewer iterations, highlighting their efficiency in real-world scenarios.