Adapted Approach for Fruit Disease Identification using Images

Author:

Dubey Shiv Ram1,Jalal Anand Singh2

Affiliation:

1. GLA University Mathura, Chaumuhan, Mathura, India

2. Institute of Engineering and Technology, Department of Computer Engineering and Apllications, GLA University Mathura, Chaumuhan, Mathura, India

Abstract

Diseases in fruit cause devastating problem in economic losses and production in agricultural industry worldwide. In this paper, an adaptive approach for the identification of fruit diseases is proposed and experimentally validated. The image processing based proposed approach is composed of the following main steps; in the first step K-Means clustering technique is used for the defect segmentation, in the second step some state of the art features are extracted from the segmented image, and finally images are classified into one of the classes by using a Multi-class Support Vector Machine. The authors have considered diseases of apple as a test case and evaluated their approach for three types of apple diseases namely apple scab, apple blotch, and apple rot. Their experimental results express that the proposed solution can significantly support accurate detection and automatic identification of fruit diseases. The classification accuracy for the proposed solution is achieved up to 93%.

Publisher

IGI Global

Subject

General Earth and Planetary Sciences,General Environmental Science

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