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Spatio-Temporal Resolution Enhancement for Geostationary Microwave Data

机译:用于地球静止微波数据的时空分辨率增强

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In this paper, we provide a formulation for enhancing the spatio-temporal resolution of a remote sensing sequence of images. Such an image sequence could be captured by a sensor that convolves a physical scene with a spatio-temporal point spread function whose two-dimensional spatial component is the microwave instrument’s point spread function and whose one-dimensional temporal component is the rectangular kernel with sensor exposure time as its support. We perform resolution enhancement in the space-time domain, as opposed to solving the deconvolution problem for each observation. Simultaneous space-time optimization achieves a more efficient and more accurate reconstruction. The proposed deconvolution method employs total variation regularization and solves the formulation via the Split-Bregman optimization algorithm. In our experiments, we use a simulated microwave image sequence of a hurricane and demonstrate that the proposed methodology improves the accuracy when compared to the observed sequence.
机译:在本文中,我们提供了一种用于增强遥感图像的时空分辨率的制定。这种图像序列可以由传感器捕获,该传感器将物理场景悬停,其三个时间点扩展函数,其二维空间分量是微波仪器的点扩展功能,其一维时间分量是具有传感器曝光的矩形内核时间作为其支持。我们在时空域中执行分辨率增强,而不是解决每个观察的解构问题。同时的时空优化实现了更有效和更准确的重建。所提出的解构方法采用总变化正则化并通过分裂 - BREGMAN优化算法解决了配方。在我们的实验中,我们使用飓风的模拟微波图像序列,并证明所提出的方法与观察到的序列相比提高了准确性。

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