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Beschreibung
This book provides a status report on the most promising NILM methods, with an overview of the publically available dataset on which the algorithm and experiments are based. Of the proposed methods, those based on the Hidden Markov Model (HMM) and the Deep Neural Network (DNN) are the best performing and most interesting from the future improvement point of view. One method from each category has been selected and the performance improvements achieved are described. Comparisons are made between the two reference techniques, and pros and cons are considered. In addition, performance improvements can be achieved when the reactive power component is exploited in addition to the active power consumption trace.
Details
| Verlag | Springer International Publishing |
| Ersterscheinung | 14. November 2019 |
| Maße | 23.5 cm x 15.5 cm |
| Gewicht | 230 Gramm |
| Format | Softcover |
| ISBN-13 | 9783030307813 |
| Seiten | 135 |