SVM is an algorithm that can solve the problem of characterization data. Use in data analysis and classification of information to find the coefficients of the equation to create a line of packets that have been entered into the process of teaching and learning system. By focusing on a group of routes to the best yae SVM arising from the taking of the data placed in the Feature Space and then find lines that separate both from each other and will create a break line (Hyperplane) as straight up and to know that two straight lines that split apart. A straight line is the best route. For its original foundations Support Vector Machine applied to linear data but, in fact, the information systems of teaching-learning system, often as a non-linear. Who can solve the problem with Kernal Function used. A breakdown on the plane will use to select the most appropriate selection feature, which is called the structure in the data selection tutorial system to learn. The number of set of structures that are used to describe, in one case, called vector.
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