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Overview of image processing approach for nutrient deficiencies detection in Elaeis Guineensis

机译:几内亚Elaeis Guineensis营养成分检测的图像处理方法概述

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The most common problems occurred in Elaeis Guineensis or widely known as oil palm are plant diseases and pest outbreaks. The diseased oil palm plants normally shows a range of symptoms such as coloured spots or streaks that will occur on the leaves, stems, and seeds of the plant. At present, in the agricultural sectors, diagnosing the type disease of plants are based on human expert, which is alongside with the conventional method applied using test device and performing laboratory test. Therefore, the needs in new approach to classify type of diseases are preferable. Hence, the aim of this paper is to focus on an innovative method based on image processing technique for classifying the lack of nutritional disease occurred in oil palm leaves by analyzing the leave surface only. The result is usable as a guide for fertilization since the trees respond rapidly to the applied fertilizers. The main important concern is to ensure the sufficient amount of fertilizer since excessive intake of fertilizers will cause toxicity to trees and indirectly increase cost of fertilizers. Images of oil palm leaves will be captured using high-end digital imaging device to analyse the leaves surface. Further, feature extraction algorithms also will develop based on shape, texture, and colour of the disease type. The feature vectors will be attained acting as inputs to fuzzy classifier. Overall, the proposed method will benefit the oil palm industries to fulfill the industry demand.
机译:最常见的问题发生在几内亚油菜(Elaeis Guineensis)或广为人知的油棕中,是植物病害和病虫害暴发。患病的油棕植物通常会出现一系列症状,例如在植物的叶子,茎和种子上会出现彩色斑点或条纹。当前,在农业领域中,基于人类专家来诊断植物的类型疾病,这是与使用测试装置并执行实验室测试的常规方法一起进行的。因此,需要新的方法来对疾病类型进行分类。因此,本文的目的是集中在基于图像处理技术的创新方法上,该方法仅通过分析叶子表面即可对油棕叶中发生的营养性疾病进行分类。由于树木对施用的肥料反应迅速,因此该结果可作为施肥的指导。主要的重要问题是确保肥料充足,因为过量摄入肥料会对树木造成毒性并间接增加肥料成本。油棕叶的图像将使用高端数字成像设备捕获,以分析叶的表面。此外,特征提取算法还将根据疾病类型的形状,纹理和颜色进行开发。将获得特征向量作为模糊分类器的输入。总体而言,所提出的方法将有利于油棕行业满足行业需求。

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