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A Marked Point Process Model Including Strong Prior Shape Information Applied to Multiple Object Extraction From Images

机译:包含强先验形状信息的标记点过程模型应用于从图像中提取多目标

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Object extraction from images is one of the most important tasks in remote sensing image analysis. For accurate extraction from very high resolution (VHR) images, object geometry needs to be taken into account. A method for incorporating strong yet flexible prior shape information into a marked point process model for the extraction of multiple objects of complex shape is presented. To control the computational complexity, the objects considered are defined using the image data and the prior shape information. To estimate the optimal configuration of objects, the process is sampled using a Markov chain based on a stochastic birth-and-death process on the space of multiple objects. The authors present several experimental results on the extraction of tree crowns from VHR aerial images.
机译:从图像中提取对象是遥感图像分析中最重要的任务之一。为了从高分辨率(VHR)图像中准确提取,需要考虑对象的几何形状。提出了一种将强大而灵活的先验形状信息合并到标记点过程模型中以提取复杂形状的多个对象的方法。为了控制计算复杂度,使用图像数据和先验形状信息定义了所考虑的对象。为了估计对象的最佳配置,使用马尔可夫链对过程进行采样,该过程基于多个对象空间上的随机生死过程。作者介绍了一些从VHR航空影像中提取树冠的实验结果。

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