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文件名称: MATLAB用于支持向量机-svm_v251.rar
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 详细说明: MATLAB用于支持向量机-svm_v251.rar MATLAB用于支持向量机 Support Vector Machine toolbox for Matlab Version 2.51, January 2002 Contents.m contains a brief description of all parts of this toolbox. Main features are: - Except for the QP solver, all parts are written in plain Matlab. This   guarantees for easy modification. Special kinds of kernels that require   much computation (such as the Fisher kernel, which is based on a model of   the data) can easily be incorporated. - Extension to multi-class problems via error correcting output codes is   included. - Unless many other SVM toolboxes, this one can handle SVMs with 1norm   or 2norm of the slack variables. - For both cases, a decomposition algorithm is implemented for the training   routine, together with efficient working set selection strategies.   The training algorithm uses many of the ideas proposed by Thorsten   Joachims for his SVMlight. It thus should exhibit a scaling behaviour that   is comparable to SVMlight. This toolbox optionally makes use of a Matlab wrapper for an interior point code in LOQO style . To compile the wrapper, run   mex loqo.c pr_loqo.c Make sure you have turned on the compiler optimizations in mexopts.sh The LOQO code can be retrieved from   http://www.kernel-machines.org/code/prloqo.tar.gz The wrapper comes directly from Steve Gunn. Copyright Anton Schwaighofer mailto:anton.schwaighofergmx.net This program is released unter the GNU General Public License. See License.txt for details. Changes in version 2.51: - fixed bug in SVMTRAIN that prevented correct initialisation with   NET.recompute==Inf Changes in version 2.5: - Handling of multi-class problems with ECOC - NET.recompute is set to Inf by default, thus all training is done   incrementally by default. - Handling the case of all training examples being -1 or 1 correctly Changes in version 2.4: - Better selection of the initial working set - Added workaround for a Matlab quadprog bug with badly conditioned   matrices - There is now a new kernel function rbffull where a full matrix    C may be put into an RBF kernel:   K = exp*C*) Changes in version 2.3: - slightly more compact debug output Changes in version 2.2: - New default values for parameter qpsize that make the whole toolbox   *much* faster - Workaround for a Matlab bug with sparse matrices - Changed the definition of the RBF-Kernel: from |x-y|^2/   to |x-y|^2/. This means that all parameter settings for old   versions need to be updated! - A few minor things I cant remember Changes in version 2.1: Fixed a nasty bug at the KKT check Changes in version 2.0: All relevant routines have been updated to allow the use of a SVM with 2norm of the slack variables .
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