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A multi-baseline data fusion algorithm for distributed satellites SAR interferometry by combining iterative and maximum-likelihood methods

机译:迭代和最大似然法相结合的分布式卫星SAR干涉多基线数据融合算法

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In distributed satellites interferometric SAR (InSAR) system, short baselines usually make higher height ambiguity but the interferometric phase can be unwrapped much more easily, while the long baselines usually cause more complicated phase unwrapping problems but have less height ambiguity. It's of obvious significance if we can combine the data from baselines of different length. In this paper, a multi-baseline InSAR data fusion method based on iterative and maximum-likelihood methods is proposed to combine the information from different baselines and obtain more accurate digital elevation model (DEM) compared with single baseline. Our simulation shows that the proposed algorithm is more effective and accurate than iterative or maximum-likelihood method in multi-baseline InSAR system, and it is especially appropriate for the rugged terrain height retrieving or processing highly ambiguous data, for which commonly used phase unwrapping algorithms may fail.
机译:在分布式卫星干涉SAR(InSAR)系统中,短基线通常会产生更高的高度模糊性,但是干涉相位可以更容易地展开,而长基线通常会导致更复杂的相位展开问题,但高度模糊性较小。如果我们可以合并来自不同长度的基线的数据,则具有明显的意义。本文提出了一种基于迭代和最大似然法的多基线InSAR数据融合方法,以结合来自不同基线的信息,并获得比单个基线更准确的数字高程模型(DEM)。仿真结果表明,该算法在多基线InSAR系统中比迭代或最大似然法更有效,更准确,特别适合于崎terrain的地形高度检索或处理高度模糊的数据,对于这些数据通常采用相位展开算法可能会失败。

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