Investigation on Image Processing Techniques for Diagnosing Paddy Diseases

Nunik Noviana Kurniawati, S. N. H. S. Abdullah, S. Abdullah, Saad Abdullah
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引用次数: 78

Abstract

The main objective of this research is to develop a prototype system for diagnosing paddy diseases, which are Blast Disease (BD), Brown-Spot Disease (BSD), and Narrow Brown-Spot Disease (NBSD). This paper concentrates on extracting paddy features through off-line image. The methodology involves image acquisition, converting the RGB images into a binary image using automatic thresholding based on local entropy threshold and Otsu method. A morphological algorithm is used to remove noises by using region filling technique. Then, the image characteristics consisting of lesion type, boundary colour, spot colour, and broken paddy leaf colour are extracted from paddy leaf images. Consequently, by employing production rule technique, the paddy diseases are recognized about 94.7 percent of accuracy rates. This prototype has a very great potential to be further improved in the future.
水稻病害诊断的图像处理技术研究
本研究的主要目的是建立水稻稻瘟病(BD)、褐斑病(BSD)和窄褐斑病(NBSD)的诊断原型系统。本文主要研究通过离线图像提取水稻特征。该方法包括图像采集,使用基于局部熵阈值和Otsu方法的自动阈值将RGB图像转换为二值图像。形态学算法利用区域填充技术去除噪声。然后,从水稻叶片图像中提取损伤类型、边界颜色、斑点颜色和破碎的水稻叶片颜色等图像特征;结果表明,采用生产规律技术对水稻病害的识别准确率为94.7%。这个原型机在未来有很大的潜力可以进一步改进。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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