Improved firefly algorithm-based power transformation engineering cost prediction method for SVM optimization
A technology of firefly algorithm and firefly optimization, which is applied in the field of substation project cost prediction based on improved firefly algorithm optimization SVM, can solve problems such as overfitting and easy to fall into local optimum, and achieve high-precision prediction, fast convergence speed, and search ability strong effect
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Embodiment 1
[0084] In this embodiment, the Schaffer test function is used to test the optimization capabilities of FA and GDFA, and a comparative analysis is performed.
[0085] The Schaffer function formula is:
[0086]
[0087] The Schaffer function obtains the global optimal solution 1 at (0,0). There is a circular ridge around the maximum point, and the difference between the local extremum and the maximum point at the circular ridge is small, and it is easier to fall into a local optimum. For this reason, this embodiment uses the Schaffer function to better test the optimization capability between FA and GDFA. Assuming the search range is [-5,5,-5,5], 100 fireflies, the maximum number of iterations is 200, the step size factor α=0.2, and the light intensity absorption coefficient γ=1.0, then use the Schaffer function to test the FA algorithm and GDFA The comparison results of the algorithm are as follows Figure 3a with Figure 3b shown. Depend on Figure 3a with Figure 3b...
Embodiment 2
[0089] In this embodiment, the GDFA algorithm is used as the SVM system parameter optimization algorithm to predict the cost level of the substation project.
[0090] The following is an example of the cost level of 72 new 220kV outdoor substation projects in a province in 2014. Starting from the geographical environment, project management, social environment, etc., it will include soil quality, power distribution device planning, substation type, Seven indicators, including equipment and material prices, project progress, technical level of designers, and project quality, are the main factors affecting the cost of 220kV new substation projects. The substation project cost prediction in this embodiment is based on the above 7 influencing factors, and the cost level and influencing factors data of the first 54 historical substation projects are selected as the training set, and the cost level and influencing factors of the last 18 projects are the test set. Detailed data are s...
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