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Plant and Phenology Recognition from Field Images Using Texture and Color Features

机译:利用纹理和颜色特征从野外图像识别植物和物候

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Determination of the phenological stages of plants is important for the growth of healthy and productive plants. The knowledge of transition times of phenological stages of a plant can provide valuable data for planning, organizing and timely execution of agricultural activities (spraying, irrigation etc.). TARBIL is an agricultural monitoring and information system that is founded and supported by Republic of Turkey Ministry of Food, Agriculture and Livestock. This system has a network of stations located in many parts of Turkey. Stations, that contain many sensors and cameras, periodically collect images and meteorological data from the agricultural fields. Previous works focus on either only about plant identification or only phenological stage recognition using only one texture analysis method. Our approachment to the problem is novel because not only the recognition of the plant type or the recognition of only the phenological stage, but also joint identification of the plant type and the phenological stages are provided with several texture and color feature analysis methods. In this work, a study is conducted to compare the use of several image texture features along with color features extracted from TARBIL field image data for the classification of the plants and their phenological stages. Experimental results show that HOG (Histograms of Oriented Gradients) yields the best performance among the texture features tested.
机译:确定植物物候阶段对于健康和高产植物的生长很重要。植物物候阶段过渡时间的知识可以为农业活动(喷洒,灌溉等)的计划,组织和及时执行提供有价值的数据。 TARBIL是一个农业监控和信息系统,由土耳其共和国食品,农业和畜牧部建立并提供支持。该系统具有位于土耳其许多地方的站点网络。包含许多传感器和照相机的气象站会定期从农业领域收集图像和气象数据。以前的工作只专注于植物识别或仅使用一种纹理分析方法的物候阶段识别。我们对这个问题的解决方法是新颖的,因为不仅提供了几种纹理和颜色特征分析方法,而且不仅提供了对植物类型的识别或仅对物候期的识别,而且对植物类型和物候期进行了联合识别。在这项工作中,进行了一项研究,以比较几种图像纹理特征以及从TARBIL田间图像数据中提取的颜色特征在植物及其物候阶段分类中的用途。实验结果表明,HOG(定向直方图)在测试的纹理特征中表现出最佳性能。

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