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首页> 外文期刊>International journal of computer science and network security >Individual Tree Crown Segmentation in Aerial Forestry Images by Mean Shift Clustering and Graph-based Cluster Merging
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Individual Tree Crown Segmentation in Aerial Forestry Images by Mean Shift Clustering and Graph-based Cluster Merging

机译:基于均值漂移聚类和基于图的聚类合并在航空林业图像中的单树冠分割

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Individual tree crown segmentation is frequently required in forest inventory, biomass measurement, change detection, tree species recognition, etc. It is almost impossible to do manual segmentation of huge forest by human. In this paper, we present an automatic method for individual tree crown segmentation in aerial forestry images. We first extract treetops using the method in [1]. Next we apply mean shift clustering to group pixels into clusters having homogeneous properties. Then we build a cluster adjacency graph where clusters belonging to the same crown are merged. We tested our method on some forestry images and obtained good results.
机译:在森林资源清查,生物量测量,变化检测,树种识别等方面,经常需要对单个树冠进行分割。几乎不可能用人工对大森林进行分割。在本文中,我们提出了一种用于航空林业图像中单个树冠分割的自动方法。我们首先使用[1]中的方法提取树梢。接下来,我们应用均值漂移聚类将像素分组为具有同质属性的聚类。然后,我们建立一个群集邻接图,其中合并属于同一冠的群集。我们在一些林业图像上测试了我们的方法,并获得了良好的结果。

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