Indonesian Journal of Electrical Engineering and Computer Science
Vol 31, No 2: August 2023

A multi-instance learning based approach for whitefly pest detection

Lal Chand (Punjabi University Patiala)
Amardeep Singh Dhiman (Punajbi University Patiala)
Sikander Singh (Punjabi University Patiala)



Article Info

Publish Date
01 Aug 2023

Abstract

Agriculture constantly faces various challenges including attacks from new pests and insects. With large farm sizes and plummeting manpower in the agricultural sector, it becomes challenging to continuously monitor crops for pest infestation. In this research paper, a specific type of pest attack known as the white fly attack has been investigated which affects a variety of crops. This paper presents four different approaches for automated classification of whiteflies which are the Bayesian network, convolution neural network (CNN), ResNet and multi-instance learning-CNN. A comparative analysis with conventional machine learning and deep learning techniques has also been presented. The performance of the proposed technique has been evaluated in terms of the classification accuracy. The experimental results obtained show that the proposed technique attains a classification accuracy of 95.53%, 96.9%, 97.6% and 98.13% for the four models respectively. A comparative analysis in terms of accuracy of classificaiton, with existing techniques shows that the proposed technique outperforms baseline deep learning models identifying whitefly infestation.

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