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Diseased Leaf Segmentation from Complex Background Using Indices Based Histogram

机译:使用基于索引的直方图,从复杂背景的患病叶子分割

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Early detection of plant diseases is a key to avoid losses in agriculture products' quality and quantity. The study of plant diseases entails the examination of visually discernible patterns on the plant. Plant health monitoring and disease identification are important for long-term agriculture. Manually monitoring plant diseases is extremely difficult that requires a great deal of effort, knowledge of plant diseases, and an inordinate amount of time consumed. As a result, image processing methods are employed to identify plant diseases. In the disease detection process, various phases of digital image processing are incorporated. The proposed work adapted a different kind of segmentation for getting the plant disease attributes based on the leaves images. The dataset used is collected from Plant Village, Kaggle, and Mendeley datasets with different plant leave images that include different shape, margin, and texture features for identifying the disease attacked to it. The collected dataset is sliced with train and test data classifiers and processed. Segmentation performance by an indices-based histogram approach resulted in 92.06% accuracy.
机译:植物疾病的早期检测是避免农业产品质量和数量损失的关键。植物疾病的研究需要检查植物上视觉上可辨别的模式。植物健康监测和疾病鉴定对于长期农业来说是重要的。手动监测植物疾病是非常困难的,需要大量的努力,对植物疾病的知识以及消耗的过多时间。结果,采用图像处理方法来鉴定植物疾病。在疾病检测过程中,掺入了数码图像处理的各个相。所提出的工作适用于基于叶片图像获得植物病属性的不同类型的分段。使用的数据集是从植物村,卡格林和孟德利数据集收集,其中包括不同的植物留言,包括不同的形状,边距和纹理特征,用于识别攻击它的疾病。收集的数据集用火车和测试数据分类器切片并进行处理。基于指标的直方图方法的分割性能导致了92.06%的准确性。

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