Method for selecting characteristic facing to complicated mode classification
A feature selection method and pattern classification technology, applied in character and pattern recognition, genetic models, instruments, etc., can solve problems such as premature convergence, occupying multiple network grid points, and premature maturity
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[0073] like figure 1 Shown: A feature selection method for complex pattern classification, followed by the following steps:
[0074] (1) Collect the sample data set obtained after feature extraction;
[0075] The sample data set can be different types of data sets, such as image data, sound data, system failure data, etc., the sample data set is composed of feature values obtained by feature extraction, and the length of each sample individual is the feature number L , input the sample data set through the input interface.
[0076] (2) normalize the sample data set according to the characteristics;
[0077] (3) Perform matrix transformation on the normalized sample data set to form a feature matrix;
[0078] A sample array is opened up in the computer, and the training samples are stored in the sample array. The type of the array is a structure type, and the structure includes two structure variables of sample data and sample data category. The sample data is to save the...
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