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Building Extraction and Change Detection in Multitemporal Remotely Sensed Images with Multiple Birth and Death Dynamics

机译:多胎和死亡动态的多立体远程感测图像中的建立提取和变化检测

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In this paper we introduce a new probabilistic method which integrates building extraction with change detection in remotely sensed image pairs. A global optimization process attempts to find the optimal configuration of buildings, considering the observed data, prior knowledge, and interactions between the neighboring building parts. The accuracy is ensured by a Bayesian object model verification, meanwhile the computational cost is significantly decreased by a non-uniform stochastic object birth process, which proposes relevant objects with higherprobability based on low-level image features.
机译:本文介绍了一种新的概率方法,其集成了在远程感测图像对中改变检测的建筑提取。考虑观察到的数据,先前知识和相邻建筑物之间的相互作用,全局优化过程试图找到建筑物的最佳配置。通过贝叶斯对象模型验证确保了准确性,同时通过非均匀随机对象出生过程显着降低了计算成本,这提出了基于低级别图像特征具有更高可作为的相关对象。

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