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A Marked Point Process Model with Strong Prior Shape Information for the Extraction of Multiple, Arbitrarily-Shaped Objects

机译:具有强先验形状信息的标记点过程模型,用于提取多个任意形状的对象

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We define a method for incorporating strong prior shape information into a recently extended Markov point process model for the extraction of arbitrarily-shaped objects from images. To estimate the optimal configuration of objects, the process is sampled using a Markov chain based on a stochastic birth-and-death process defined in a space of multiple objects. The single objects considered are defined by both the image data and the prior information in a way that controls the computational complexity of the estimation problem. The method is tested via experiments on a very high resolution aerial image of a scene composed of tree crowns.
机译:我们定义了一种方法,用于将强大的先验形状信息合并到最近扩展的马尔可夫点过程模型中,以从图像中提取任意形状的对象。为了估计对象的最佳配置,可使用马尔可夫链对过程进行采样,该过程基于在多个对象的空间中定义的随机生死过程。所考虑的单个对象由图像数据和先验信息共同定义,从而控制估计问题的计算复杂性。通过对由树冠组成的场景的高分辨率航空图像进行的实验,对该方法进行了测试。

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