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Brassicaceae Leaf Disease Detection using Image Segmentation Technique

机译:基于图像分割技术的芸苔科植物叶片病害检测

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In the present time, leaf disease is one of the major problems of Brassicaceae vegetables in the agriculture domain as it affects the quality and quantity of the vegetables. The most common leaf disease of these vegetables is downy mildew, blight leaf disease, and leaf spot. This paper mainly considers identifying the diseased region of the leaves using the image segmentation technique and presents experimentation of the desired number of clusters k. To address the objectives, image acquisition, pre-processing, segmentation, and emphasizing the affected portion of the leaves are all part of the process of the proposed method. The images were transformed into grayscale and removed from the background using Otsu’s thresholding method. K-means clustering algorithm was applied to segment the different regions of the sample images. Finally, the clustered images were then analyzed using a median filter to emphasize the region of interest of the affected leaves. With the different number of clusters k used, k = 4 was successfully segmented the diseased portion, and it was confirmed by the elbow method. Further, the infected area of the sample images was presented in different colors. Also, the proposed method provides a 96.90% accuracy compared to other image segmentation techniques. Image segmentation has become an effective tool in various applications in the agricultural sector.
机译:目前,叶片病害是芸苔科蔬菜在农业领域的主要问题之一,它影响蔬菜的质量和数量。这些蔬菜最常见的叶病是霜霉病、枯萎病和叶斑病。本文主要考虑使用图像分割技术来识别叶片的病变区域,并对所需数量的聚类k进行了实验。为了实现目标,图像采集、预处理、分割和强调叶片的病变部分都是该方法过程的一部分。图像被转换成灰度,并使用大津阈值法从背景中移除。采用K均值聚类算法对样本图像的不同区域进行分割。最后,使用中值滤波器对聚类图像进行分析,以强调受影响叶片的感兴趣区域。通过使用不同数量的聚类k,k=4成功地分割出病变部分,并通过肘部法确认。此外,样本图像的感染区域以不同颜色呈现。此外,与其他图像分割技术相比,该方法提供了96.90%的准确率。图像分割已成为农业部门各种应用中的一种有效工具。

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