Fr. 65.00

Artificial Intelligence supported Power Quality Prediction and Mitigation

English · Paperback / Softback

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Description

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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.

Product details

Authors Adrian Eisenmann
Publisher Books On Demand
 
Languages English
Product format Paperback / Softback
Released 01.12.2023
 
EAN 9783756812332
ISBN 978-3-7568-1233-2
No. of pages 194
Dimensions 148 mm x 210 mm x 13 mm
Weight 289 g
Illustrations 68 Farbabb.
Series Schriftenreihe des Instituts für Energieübertragung und Hochspannungstechnik
Subject Natural sciences, medicine, IT, technology > Technology > Electronics, electrical engineering, communications engineering

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