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Efficient simultaneous image deconvolution and upsampling algorithm for low-resolution microwave sounder data

机译:低分辨率微波测深仪数据的高效同时图像去卷积和上采样算法

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摘要

Microwave imaging has been widely used in the prediction and tracking of hurricanes, typhoons, and tropical storms. Due to the limitations of sensors, the acquired remote sensing data are usually blurry and have relatively low resolution, which calls for the development of fast algorithms for deblurring and enhancing the resolution. We propose an efficient algorithm for simultaneous image deconvolution and upsampling for low-resolution microwave hurricane data. Our model involves convolution, downsampling, and the total variation regularization. After reformulating the model, we are able to apply the alternating direction method of multipliers and obtain three subproblems, each of which has a closed-form solution. We also extend the framework to the multichannel case with the multichannel total variation regularization. A variety of numerical experiments on synthetic and real Advanced Microwave Sounding Unit and Microwave Humidity Sounder data were conducted. The results demonstrate the outstanding performance of the proposed method. (C) 2015 Society of Photo-Optical Instrumentation Engineers (SPIE)
机译:微波成像已广泛用于飓风,台风和热带风暴的预测和跟踪。由于传感器的限制,所获取的遥感数据通常是模糊的并且具有相对较低的分辨率,这要求开发用于去模糊和增强分辨率的快速算法。我们提出了一种有效的算法,用于低分辨率微波飓风数据的同时图像反卷积和上采样。我们的模型涉及卷积,下采样和总变化正则化。重新构造模型后,我们可以应用乘子的交替方向方法,并获得三个子问题,每个子问题都有一个封闭形式的解决方案。我们还将框架扩展到具有多通道总变化正则化的多通道情况。在合成的和实际的高级微波测深仪和微波湿度测深仪数据上进行了各种数值实验。结果证明了该方法的出色性能。 (C)2015年光电仪器工程师协会(SPIE)

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