Classification accuracy for various neuroimaging markers (50% of the data are used as training set and the rest 50% as test set, except for the last column, where a leave-one-out cross-validation is used).
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https://figshare.com/articles/dataset/_Classification_accuracy_for_various_neuroimaging_markers_50_of_the_data_are_used_as_training_set_and_the_rest_50_as_test_set_except_for_the_last_column_where_a_leave_one_out_cross_validation_is_used_/308060
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The best results are achieved when we combine the features from the community matrix K and the asymmetry measure ρ. The accuracy of classification using SVM versus the number of edges selected from the community matrix K can be found in the Text S4.
创建时间:
2012-05-17



