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LINE-BASED MODIFIED ITERATED HOUGH TRANSFORM FOR AUTOMATIC REGISTRATION OF MULTI-SOURCE IMAGERY

机译:用于多源图像自动配准的基于行的修正迭代霍格变换

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摘要

Image registration aims at combining imagery from multiple sensors to achieve higher accuracy and derive more information than that obtained from a single sensor. The enormous increase in the volume of remotely sensed data that is being acquired by an ever-growing number of earth observation satellites mandates the development of accurate, robust, and automated registration procedures. An effective automatic image registration has to deal with four issues: registration primitives, transformation function, similarity measure, and matching strategy. This paper introduces a new approach for automatic image registration using linear features as the registration primitives. Linear features have been chosen because they can be reliably extracted from imagery with significantly different geometric and radiometric properties. The modified iterated Hough transform (M1HT), which manipulates the registration primitives and similarity measure, is used as the matching strategy for automatically deriving an estimate of the parameters involved in the transformation function as well as the correspondence between conjugate primitives. The MIHT procedure follows an optimal sequence for parameter estimation that takes into account the contribution of linear features with different orientations at various locations within the imagery towards the estimation of the transformation parameters in question. Experimental results using real data proved the feasibility and robustness of the suggested approach.
机译:图像配准的目的是组合来自多个传感器的图像,以实现更高的准确性,并获得比从单个传感器获得的信息更多的信息。越来越多的地球观测卫星正在获取的遥感数据量的巨大增加,要求开发准确,可靠且自动的注册程序。有效的自动图像配准必须处理四个问题:配准基元,转换函数,相似性度量和匹配策略。本文介绍了一种使用线性特征作为配准图元的自动图像配准的新方法。选择线性特征是因为可以从具有显着不同的几何和辐射特性的图像中可靠地提取线性特征。修改后的迭代霍夫变换(M1HT),用于处理注册原语和相似性度量,用作匹配策略,用于自动推导涉及转换函数的参数的估计以及共轭原语之间的对应关系。 MIHT过程遵循参数估计的最佳顺序,该顺序考虑了图像内各个位置处具有不同方向的线性特征对所讨论的变换参数的估计的贡献。使用实际数据的实验结果证明了该方法的可行性和鲁棒性。

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