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Non-linear filtering approach to an adjustment of non-uniform sampling locations in spatial datasets

机译:用于调整空间数据集中非均匀采样位置的非线性滤波方法

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A procedure is described for adjusting sampling locations in one spatially discretized dataset to those in another when the value differences between these sets are mainly caused by the sampling intervals that locally lengthen and shorten. This adjustment is formulated into an optimization form that can be solved by dynamic programming. Unknown parameters involved in the form can be identified using the maximum likelihood procedure that employs non-linear filtering for a generalized state-space model. This procedure is based on the fact that the optimal solution in dynamic programming is equivalent to the "maximum a posteriori (MAP) estimation" in a Bayesian framework.
机译:描述了一种当这些空间之间的值差异主要是由局部延长和缩短的采样间隔引起的时,将一个空间离散数据集中的采样位置调整为另一个采样位置的过程。此调整公式化为可通过动态编程解决的优化形式。可以使用最大似然过程来识别表单中涉及的未知参数,该最大似然过程对广义状态空间模型采用非线性滤波。此过程基于以下事实:动态编程中的最佳解决方案等效于贝叶斯框架中的“最大后验(MAP)估计”。

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