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Textural classification of BW aerial photos for the forest classification

机译:黑白航拍照片的纹理分类用于森林分类

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摘要

The Ministry of agriculture of the Czech Republic has defined a pilot project to summarize possible information that can be automatically evaluated from black and white aerial photos. This information should serve as input data into the large forest database or as signal data for forest state management organizations. These data were derived in traditional and modern ways. The traditional one used well-known principles of image processing as image distraction and thresholding. Modern tools were applied for other tasks using Fractal Net Evolution Approach commercially introduced by Baatz and Schaepe (1999) incorporated in commercial software eCognition for image segmentation and further classification where not only black and white aerial photos were used but also texture measures of these B&W aerial photos. The textural classification as another way used results of the detailed object oriented classification. The methodology was tested in another project defining the geodynamical model of land. The result of the project is a methodology to delineate forest areas, to distinguish deciduous and coniferous forest, to detect new deforestation and new large illegal dumpings and erosional rills from two different time level aerial photos. These tasks also include uninsured forest area detection. It means to determine six year-old forest (and younger).
机译:捷克共和国农业部已定义了一个试点项目,以总结可以从黑白航拍照片中自动评估的可能信息。此信息应作为大型森林数据库的输入数据或森林状态管理组织的信号数据。这些数据以传统方式和现代方式得出。传统的方法使用众所周知的图像处理原理作为图像分散和阈值处理。使用由Baatz和Schaepe(1999)商业引入的分形网络演化方法将现代工具应用于其他任务,该方法结合在商业软件eCognition中用于图像分割和进一步分类,其中不仅使用了黑白航拍照片,而且还使用了这些B&W航拍的纹理测量相片。纹理分类是使用详细的面向对象分类结果的另一种方法。该方法在另一个定义土地地球动力学模型的项目中进行了测试。该项目的结果是一种方法,用于从两个不同时间水平的航拍照片中划定森林面积,区分落叶和针叶林,检测新的森林砍伐,新的大型非法倾倒物和侵蚀小溪。这些任务还包括未保险的森林面积检测。这意味着确定6岁(或更年轻)的森林。

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