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An Adaptive Neuro-Fuzzy Inference System in Assessment of Technical Losses in Distribution Networks (CROSBI ID 225989)

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Mlakić, Dragan ; Nikolovski, Srete ; Knežević, Goran An Adaptive Neuro-Fuzzy Inference System in Assessment of Technical Losses in Distribution Networks // International Journal of Electrical and Computer Engineering (Yogyakarta), 6 (2016), 3; 1294-1304. doi: 10.11591/ijece.v6i3

Podaci o odgovornosti

Mlakić, Dragan ; Nikolovski, Srete ; Knežević, Goran

engleski

An Adaptive Neuro-Fuzzy Inference System in Assessment of Technical Losses in Distribution Networks

The losses in distribution networks have always been key elements in predicting investment, planning work, evaluating the efficiency and effectiveness of a network. This paper elaborates on the use of fuzzy logic systems in analyzing the data from a particular substation area predicting losses in the low voltage network. The data collected from the field were obtained from the Automatic Meter Reading (AMR) and Automatic Meter Management (AMM) systems. The AMR system is fully implemented in EPHZHB and integrated within the network infrastructure at secondary level substations 35/10kV and 10(20)/0.4 kV. The AMM system is partially implemented in the areas of electrical energy consumers ; precisely, in accounting meters. Daily information gathered from these systems is of great value for the calculation of technical and non-technical losses. Fuzzy logic in combination with the Artificial Neural Networks implemented via the Adaptive Neuro-Fuzzy Inference System (ANFIS) is used. Finally, FIS Sugeno, FIS Mamdani and ANFIS are compared with the measured data from smart meters and presented with their errors and graphs.

Artificial intelligence ; Adaptive neuro-fuzzy inference system ; Technical losses ; Remote meter reading ; LV distribution network

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Podaci o izdanju

6 (3)

2016.

1294-1304

objavljeno

2088-8708

10.11591/ijece.v6i3

Povezanost rada

Elektrotehnika

Poveznice
Indeksiranost