Turkish Journal of Computer and Mathematics Education
Journal license

Journal

Turkish Journal of Computer and Mathematics Education


Volume
& Issue

Volume 13, Issue 3


Published
on


Pages

705-718


DOI

Article

Feature Selection for Gabor Filter Based on Level Measurement using Non-Interacting Tanks Level Images


Authors

Kalaiselvi B Affiliation:
Research Scholar, Dept of ECE, Bharath Institute of Higher Education and Research, Chennai, Tamilnadu, India
, Karthik B Affiliation:
Associate Professor, Dept of ECE, Bharath Institute of Higher Education and Research, Chennai, Tamilnadu, India
and C. V. Krishna Reddy Affiliation:
Professor and Director, Nalla Narasimha Reddy Group of Institutions, Hyderabad, Telangana, India


Abstract

Level measurement models using image -based classifiers (pixel -based datasets) are used for estimation purposes. Pre-processing is thought-provoking in proceeding out the image filter technique and classifying the level. The level scenario of a two non -interacting tank system plays a vital role in predicting the level. Level monitoring is done using the supervised learning method using instance -based filters (Gabor Filter) and selected base classifiers for level measurements. The main scope of this case stud y is to improve the level measurements from the two non -interacting tank scenarios using Artificial Intelligent algorithms. The suggested article includes the finest feature selection process to increase the accuracy performance attained by the designated classifiers like IBK Instance base classifier for different neighbourhood values and Tree category algorithm like Random Forest. The performance accuracy in level prediction obtained is 81.356%, the weighted Average of Receiver operator characteristics of (ROC) 0.931 are obtained by Random Forest Tree Category Classifier.


Keywords

Level Monitoring, Gabor filter, machine learning, KNN, Random Forest, ROC


Citation

B, K., B, K., & Reddy, C. V. K. (2022). Feature selection for gabor filter based on level measurement using non-interacting tanks level images. Turkish Journal of Computer and Mathematics Education, 13(3), 705–718.

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