Mercurial > hg > camir-aes2014
view reproduce_AES53rd/rerun_table3.m @ 0:e9a9cd732c1e tip
first hg version after svn
author | wolffd |
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date | Tue, 10 Feb 2015 15:05:51 +0000 |
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% --- % This script trains similarity measures and shows the % results regarding RBM of table 3 % % Feature Preprocessing with RBMs for Music Similarity Learning % Son N. Tran, Daniel Wolff, Tillman Weyde, Artur Garcez, AES53rd % conference % % please note that the RBM training is a probabilistic process, and % thus the papers' results can only be reproduced approximately with % large numbers of iterations of this script, and selection of RBMs according to % their training set performance. % Here, training is done on 20 random initialisations of RBM features , % the test results corresponding to the RBM with the best training result are then % returned. % % The train and test performances are output in the console % % For convenicence, The precomputed RBM features are stored in the files % accompaining this script. % In order to compute new SVM features, delete these files. % --- % --- % get svm results for RBM % --- svm_table3 % svm_test_performance %fprintf('SVM Original Test Result (Wolff etal. 2012)=71.20 / 83.54\n'); % --- % get gradient results for RBM % --- gradient_table3