Parneeta Sidhu

Work place: Division of COE, NSIT, Dwarka, New Delhi, 110078, India

E-mail: parneeta07@gmail.com

Website:

Research Interests: Computer Architecture and Organization, Data Mining, Data Structures and Algorithms

Biography

Parneeta Sidhu received her B.Tech degree in Computer Science from Punjab Technical University in 2002. She received her M. Tech degree in Information Systems from University of Delhi in 2009. Ms. Sidhu is a  Teaching cum Research Faculty in the  Division of COE at the Netaji Subhas Institute of Technology, affiliated to University of Delhi. She is presently pursuing her PhD in Computer Science from University of Delhi under the guidance of Dr. MPS Bhatia. Her research interests include data mining, concept drift, outlier analysis in data streams. She is an author or coauthor of 8 research papers in various international journals and conferences of high repute. She is a member of CSI (Computer Society of India).

Author Articles
Empirical Support for Concept Drifting Approaches: Results Based on New Performance Metrics

By Parneeta Sidhu M.P.S. Bhatia

DOI: https://doi.org/10.5815/ijisa.2015.06.01, Pub. Date: 8 May 2015

Various types of online learning algorithms have been developed so far to handle concept drift in data streams. We perform more detailed evaluation of these algorithms through new performance metrics - prequential accuracy, kappa statistic, CPU evaluation time, model cost, and memory usage. Experimental evaluation using various artificial and real-world datasets prove that the various concept drifting algorithms provide highly accurate results in classifying new data instances even in a resource constrained environment, irrespective of size of dataset, type of drift or presence of noise in the dataset. We also present empirically the impact of various features- size of ensemble, period value, threshold value, multiplicative factor and the presence of noise on all the key performance metrics.

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