2013
DOI: 10.47893/ijpsoem.2013.1092
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Neuro-Fuzzy Control in Load Forecasting of Power Sector

Abstract: Load forecasting is of vital importance for any power system. It helps in taking many decisions regarding energy purchasing and generation, maintenance, etc. Further, load forecasting provides information which is able to be used for energy interchange with other utilities. Over the years, a number of methods have been proposed for load forecasting. This paper focuses on short term load forecasting by using a hybrid model of neural networks and fuzzy logic.

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Cited by 2 publications
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“…This result confirms that C 2 has a very strong antifungal attitude. Additionally, C 2 also has comparable antifungal activity compared to a Ni coordination complex [41] and a superior activity compared to other Cd and Ni coordination complexes [38,[42][43][44] (see Table 2). Similar to the antibacterial activities, note that Cd and Ni salts only show a weak antifungal activity [38] (see Table 2).…”
Section: Antifungal Activitymentioning
confidence: 99%
“…This result confirms that C 2 has a very strong antifungal attitude. Additionally, C 2 also has comparable antifungal activity compared to a Ni coordination complex [41] and a superior activity compared to other Cd and Ni coordination complexes [38,[42][43][44] (see Table 2). Similar to the antibacterial activities, note that Cd and Ni salts only show a weak antifungal activity [38] (see Table 2).…”
Section: Antifungal Activitymentioning
confidence: 99%