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Oliver Niggemann

    Künstliche Intelligenz in Produktion und Maschinenbau
    Machine learning for cyber physical systems
    IMPROVE - Innovative Modelling Approaches for Production Systems to Raise Validatable Efficiency
    • IMPROVE - Innovative Modelling Approaches for Production Systems to Raise Validatable Efficiency

      Intelligent Methods for the Factory of the Future

      • 136 stránok
      • 5 hodin čítania

      This open access work presents selected results from the European research and innovation project IMPROVE which yielded novel data-based solutions to enhance machine reliability and efficiency in the fields of simulation and optimization, condition monitoring, alarm management, and quality prediction.

      IMPROVE - Innovative Modelling Approaches for Production Systems to Raise Validatable Efficiency
    • Machine learning for cyber physical systems

      • 121 stránok
      • 5 hodin čítania

      The work presents new approaches to Machine Learning for Cyber Physical Systems, experiences and visions. It contains some selected papers from the international Conference ML4CPS – Machine Learning for Cyber Physical Systems, which was held in Lemgo, October 1-2, 2015. Cyber Physical Systems are characterized by their ability to adapt and to learn: They analyze their environment and, based on observations, they learn patterns, correlations and predictive models. Typical applications are condition monitoring, predictive maintenance, image processing and diagnosis. Machine Learning is the key technology for these developments.

      Machine learning for cyber physical systems