Artificial Intelligence supported Power Quality Prediction and Mitigation - E-book - PDF

Edition en anglais

Adrian Eisenmann

Note moyenne 
Adrian Eisenmann - Artificial Intelligence supported Power Quality Prediction and Mitigation.
This thesis introduces a fully data driven approach for the prediction and optimization of critical electrical grid states due to poor power quality.... Lire la suite
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Résumé

This thesis introduces a fully data driven approach for the prediction and optimization of critical electrical grid states due to poor power quality. Therefore, a nonvolatile memory model for time series forecasting, designed to profit especially from big data bases and complex pattern use cases as well as an Artificial Intelligence based Smart Demand Side Management framework to enable system inherent resources / components for minimization of harmonic disturbances is applied to measured power grid scenarios.

Caractéristiques

  • Caractéristiques du format PDF
    • Pages
      194
    • Taille
      41 574 Ko
    • Protection num.
      Contenu protégé

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