Outlier analysis and Detection using K-medoids with support vector machine

R. P. S. Manikandan, A. M. Kalpana, M. NaveenaPriya · 2016

Spatio - temporal methods is the process of innovations and finding the patterns from the knowledge representations through outliers. This kind of data representing the (i) the states of an object (ii) position or event in space at a particular period of time. It refers to the Objects whose attribute values are entirely different from its neighbourhood. Always their locations are different even the nodes from the entire population are unique. Outlier Detection is the most important techniques in data mining, which is useful for identifying several activities from the huge data set. This Project is deals with the identification of Breast cancer. Here we are comparing the accuracy and performance with the previous technology, as expected Our proposed algorithm using k-medoids - support vector machine is more accurate then the Rough Outlier set Extraction mode.

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