Power equipment diagnosis method integrating negative selection algorithm and radial basis function
A technology of negative selection and power equipment, which is applied in the field of power equipment diagnosis that integrates negative selection algorithm and radial basis function, and can solve problems such as difficult contradictions, single diagnosis, and difficult knowledge acquisition
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[0028] Such as Figure 1-3 As shown, a method for diagnosing power equipment that combines negative selection algorithm and radial basis function includes the following steps:
[0029] Step S1, preprocessing the fault data through a negative selection algorithm, and classifying different fault samples;
[0030] In step S2, a machine learning algorithm is performed through a radial basis neural network function to realize fault diagnosis of power distribution equipment.
[0031] Wherein, step S1 includes the following steps:
[0032] Step S101, normalize the autologous sample S to generate a random sample X;
[0033] Step S102, calculating the Euclidean distance Dd between the real-valued vector detector with an indefinite radius and each detector DI in the random sample;
[0034] Step S103, when the Euclidean distance Dd is greater than the detection radius of the detector, calculate the Euclidean distance d between the random sample X and each self-sample Si;
[0035] Ste...
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