Detection of Infected Leaves and Botanical Diseases using Curvelet Transform

Abstract

The study of plants is known as botany and for any botanist it is a daily routine work to examine various plants in their research lab. This research efforts an image processing-based algorithm for extracting the region of interest (ROI) from plant leaf in order to classify the specie and to recognize the particular botanical disease as well. Moreover, this paper addresses the implementation of curvelet transform on subdivided leaf images in order to compute the related information and train the support vector machine (SVM) classifier to execute better results. Furthermore, the paper presents a comparative analysis of existing and proposed algorithm for species and botanical diseases recognition over the dataset of leaves. The proposed multi-dimensional curvelet transform based algorithm provides relatively greater accuracy of 93.5% with leaves dataset.

Authors and Affiliations

Nazish Tunio, Abdul Latif Memon, Faheem Yar Khuhawar, Ghulam Mustafa Abro

Keywords

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  • EP ID EP448929
  • DOI 10.14569/IJACSA.2019.0100166
  • Views 92
  • Downloads 0

How To Cite

Nazish Tunio, Abdul Latif Memon, Faheem Yar Khuhawar, Ghulam Mustafa Abro (2019). Detection of Infected Leaves and Botanical Diseases using Curvelet Transform. International Journal of Advanced Computer Science & Applications, 10(1), 516-520. https://europub.co.uk./articles/-A-448929