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Joint MAP registration and high-resolution image estimation using a sequence of undersampled images

机译:使用一系列欠采样图像的联合MAP配准和高分辨率图像估计

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In many imaging systems, the detector array is not sufficiently dense to adequately sample the scene with the desired field of view. This is particularly true for many infrared focal plane arrays. Thus, the resulting images may be severely aliased. This paper examines a technique for estimating a high-resolution image, with reduced aliasing, from a sequence of undersampled frames. Several approaches to this problem have been investigated previously. However, in this paper a maximum a posteriori (MAP) framework for jointly estimating image registration parameters and the high-resolution image is presented. Several previous approaches have relied on knowing the registration parameters a priori or have utilized registration techniques not specifically designed to treat severely aliased images. In the proposed method, the registration parameters are iteratively updated along with the high-resolution image in a cyclic coordinate-descent optimization procedure. Experimental results are provided to illustrate the performance of the proposed MAP algorithm using both visible and infrared images. Quantitative error analysis is provided and several images are shown for subjective evaluation.
机译:在许多成像系统中,检测器阵列的密度不足以对具有所需视场的场景进行充分采样。对于许多红外焦平面阵列来说尤其如此。因此,所产生的图像可能会严重混叠。本文研究了一种用于从一系列欠采样帧中估计出具有减少混叠的高分辨率图像的技术。以前已经研究了几种解决此问题的方法。但是,本文提出了一种最大后验(MAP)框架,用于联合估计图像配准参数和高分辨率图像。先前的几种方法依赖于先验地了解配准参数,或者已经利用了没有专门设计来处理严重混叠图像的配准技术。在提出的方法中,在循环坐标下降优化过程中,配准参数与高分辨率图像一起迭代更新。实验结果提供了使用可见光图像和红外图像来说明所提出的MAP算法的性能。提供了定量误差分析,并显示了一些图像进行主观评估。

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