Short-term load predicting method for Elman neural network based on improved ABC algorithm
A short-term load forecasting and neural network technology, applied in the field of electric power, can solve problems such as low reliability of load forecasting results, neglect of seasonal weather diversity, and difficulty in covering weather with normal data, so as not to fall into local optimum and converge The effect of speed and stability improvement
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[0052] The present invention will be further described in detail below in conjunction with the accompanying drawings and specific embodiments.
[0053] The main contents of the present invention are: one, fully analyze the forward transmission of the input signal of the traditional Elman neural network, the backpropagation of the error signal and the delay operator process of the receiving layer; two: aiming at the artificial bee colony (ABC) algorithm convergence A series of improvement measures have been taken for the shortcomings of slow speed and weak development ability of search equations, including redesigning search equations, adjusting the search frequency of bees, and changing the selection mechanism of better solutions; 3. Applying the improved ABC algorithm to In the Elman neural network, the load forecasting function is realized in MATLAB.
[0054] 1. Analysis of traditional Elman neural network prediction principles
[0055] 1) Basic model of Elman neural networ...
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