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An annotated image dataset of downy mildew symptoms on Merlot grape variety

机译:梅洛葡萄品种的柔软霉菌症状的注释图像数据集

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摘要

This article introduces a dataset of high-resolution colour images of grapevines. It contains 99 images acquired in the vineyard from a cruising tractor. Each image includes the full foliage of a grapevine plant. These images display a diverse range of symptoms caused by the grapevine downy mildew (Plasmopara viticola), a major fungal disease. The dataset also includes various confounding factors, i.e. anomalies that are not related to the disease.  These anomalies are the natural and common phenomena affecting vineyards such as results of mechanical wounds, necroses, chemical burns or yellowing and discolorations due to nutritional or hydric deficiencies. Images were acquired in-situ on “Le Domaine de la Grande Ferrade” a public experimental facility of INRAE, in the area of Bordeaux. Acquisitions took place at early fruiting stages (BBCH 75-79) corresponding to the main sanitary pressure during growth. The acquisition device, embedded on a vine tractor, is composed of an industrial colour camera synchronised with powerful flashes. The purpose of this device is to produce a “day for night” effect that mitigates the variation of sunlight. It enables to homogenise images acquired during different weathers and time of the day and to ensure that the foreground (containing foliage) displays appropriate brightness, with minimum shadows while the background is darker. The images of the dataset were annotated manually by photo-interpretation with a careful review of expertise regarding phytopathology and physiological disorders. The annotation process consists in associating pixels with a class that defines its membership to a type of organ and its physiological state. Pixels from healthy, symptomatic or abnormal grapevine tissues were labelled into seven classes: “Limbus”, “Leaf edges”, “Berries”, “Stems”, “Foliar mildew”, “Berries mildew” and “Anomalies”. The annotation is achieved with the GIMP2 software as mask images where the value attributed to each pixel corresponds to one of the seven considered classes.
机译:本文介绍了葡萄的高分辨率彩色图像数据集。它包含来自巡航拖拉机的葡萄园中获得的99个图像。每个图像包括葡萄植物的全叶子。这些图像显示出由葡萄霜霉病(Plasmopara Viticola)引起的各种症状,这是一个主要的真菌疾病。数据集还包括各种混杂因素,即与疾病无关的异常。这些异常是影响葡萄园的天然和常见现象,例如由于营养或液体缺陷而导致的机械伤口,坏死,化学灼伤或泛黄和变色的结果。在波尔多地区的“Le Domain de La Grande Ferrade”的“Le Domaine de La Grande Ferrade”是在Bordeae的公共实验设施中获得的图像。采集在早期结果阶段(BBCH 75-79)对应于生长期间的主要卫生压力。嵌入在藤拖拉机上的采集装置由与强大闪光同步的工业彩色相机组成。该设备的目的是在减轻阳光变化的效果中产生“夜间日”。它能够实现在不同风格和一天中的时间内获得的同性化图像,并确保前景(含有叶子)显示适当的亮度,而背景背景较暗。数据集的图像通过照片解释手动注释,并仔细审查对植物病理学和生理疾病的专业知识。注释过程包括将像素相关联,该类将其成员资格定义为某种器官及其生理状态。从健康,症状或异常葡萄组织的像素被标记为七个课程:“林滨”,“叶边缘”,“浆果”,“茎”,“叶面霉变”,“浆果霉菌”和“异常”。使用Gimp2软件实现注释,作为掩模图像,其中归因于每个像素的值对应于七个所考虑的类之一。

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