Work place: Department of Information Science and Engineering, Sri Jayachamarajendra College of Engineering, Mysuru, 570006, India
E-mail: manjun007@sjce.ac.in
Website:
Research Interests: Computational Engineering, Computer systems and computational processes, Computational Learning Theory, Computational Complexity Theory
Biography
N Manju: He obtained his B.E in Computer Science and Engineering in the year 2005 and M.Tech in Computer Network Engineering in 2008 from Visvesvaraya Technological University, Belagavi, Karnataka, India. He is presently working as an Assistant Professor in the Department of Information Science & Engineering, Sri Jayachamarajendra College of Engineering, Mysuru, Karnataka, India. He is a Life Member of ISTE. His area of interest includes Machine Learning and Computational Intelligence.
By N Manju B S Harish V Prajwal
DOI: https://doi.org/10.5815/ijcnis.2019.07.06, Pub. Date: 8 Jul. 2019
Identification and classification of internet traffic is most important in network management to ensure Quality of Service (QoS). However, existing machine learning models tend to produce unsatisfactory results when applied with imbalanced datasets involving multiple classes. There are two reasons for this: the models have a bias towards classes which have more samples and they also tend to predict only the majority class data as features of the minority class are often treated as noise and therefore ignored. Thus, there is a high probability of misclassification of the minority class compared with the majority class. Therefore, in this paper, we are proposing an ensemble feature selection based on the tree approach and ensemble classification model using XGboost to enhance the performance of classification. The proposed model achieves better classification accuracy compared to other tree based classifiers.
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