Power load prediction method based on improved dragonfly and lightweight gradient boosting tree model
A gradient boosting tree and power load technology, applied in power load forecasting and information fields, can solve problems such as low power load forecasting accuracy
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[0070] combine figure 1 , the present invention performs power load prediction based on the improved dragonfly and the lightweight gradient boosting tree model, including the following steps:
[0071] A. Collected data processing, data preprocessing includes missing value processing, data normalization, outlier processing and data discretization. And divide training set and test set
[0072] B. The LightGBM model adopts the histogram-based decision tree algorithm. First, the continuous floating-point features in the sample are discretized into k integers, and a histogram with a width of k is constructed. Then when traversing the data, use the discretized value as an index to accumulate statistics in the histogram. After one traversal, the histogram accumulates the required statistics, and finally find the best through the discrete value traversal of the histogram. split point. In this way, large-scale data is placed in the histogram, which makes the memory footprint smaller...
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