2002
DOI: 10.1002/etep.4450120505
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Load‐prediction with neural and statistical components in power systems with instationary load patterns

Abstract: A hybrid pattern algorithm is presented combining statistical and neural methods to forecast hourly load of an electrical power supplying system. Compared with ordinary neural techniques which require a large stationary data-set for the parametrization of the huge number of net-weights, the algorithm yields to a sufficient prediction even with a small reference data-set and is especially suited for power utilities with instationary load patterns. In this sense the choice of appropriate model structures and par… Show more

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