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Detection of Wooded Hedgerows in High Resolution Satellite Images using an Object-Oriented Method

机译:使用面向对象的方法检测高分辨率卫星图像中的树木繁合

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The objective of this study was to identify wooded hedgerows from remote sensing data in using an object-oriented approach, in order to estimate the proportion of hedgerow network that can be automatically extracted, whatever its characteristics. To evaluate the reliability, accuracy, and computational efficiency of the object-oriented method to extract wooded hedgerows, we applied it on different types of remote sensing images on six study sites located in bocage landscapes of Northern-western France. These images were segmented on three hierarchical levels (tree, hedge and field) and were subsequently classified by means of membership functions using fuzzy logic. The results show that the remote sensing images with a spatial resolution equal or less than 10 meters are appropriate to automatically inventory wooded hedgerows. The results also highlight that agricultural landscape complexity influences the classification accuracy, as the detection performance increases with hedges density.
机译:本研究的目的是使用面向对象的方法来识别从遥感数据的遥感数据,以估计可以自动提取的HEDGEROW网络的比例,无论其特征如何。为了评估面向对象的方法的可靠性,准确性和计算效率提取树木繁茂的HEDGEROWE,我们在不同类型的不同类型的遥感图像上应用于法国北方北方 - 西方舞蹈景观。这些图像在三个层级(树,对冲和场)上进行了分段,随后通过使用模糊逻辑的隶属函数进行分类。结果表明,空间分辨率等于或少于10米的遥感图像适合于自动库存树木繁茂的HEDGEROWS。结果还强调了农业景观复杂性影响分类准确性,因为检测性能随着铰接密度的增加而增加。

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