Similarity measurement and truncation method in chameleon algorithm
A similarity measurement and chameleon technology, applied in computing, computer components, instruments, etc., can solve the problems of difficult parameter selection and large influence of the threshold method
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[0063] The present invention first runs the improved algorithm on four artificial data sets to verify the correctness of the proposed algorithm, and then uses four clustering algorithms on the UCI data set to verify the validity of the algorithm. The characteristics of the 4 artificial datasets are as Figure 5 As shown, the corresponding data view is as follows figure 2 shown.
[0064] figure 2 It shows the clusters found by Chameleon using the same set of parameter values for 4 data sets. The present invention uses α=1, β=1, k=10 in the optimization of the function definition, and uses the combination of colors and fonts to represent different clusters Points, therefore, points belonging to the same cluster use the same color and glyph. The results show that Chameleon is able to find the earliest points in the dataset that are true clusters, that is, they correspond to the earliest iterations of the Chameleon algorithm to determine true clusters and place them in a c...
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