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Infrared super-resolution imaging based on compressed sensing

机译:基于压缩传感的红外超分辨率成像

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摘要

The theoretical basis of traditional infrared super-resolution imaging method is Nyquist sampling theorem. The reconstruction premise is that the relative positions of the infrared objects in the low-resolution image sequences should keep fixed and the image restoration means is the inverse operation of ill-posed issues without fixed rules. The super-resolution reconstruction ability of the infrared image, algorithm's application area and stability of reconstruction algorithm are limited. To this end, we proposed super-resolution reconstruction method based on compressed sensing in this paper. In the method, we selected Toeplitz matrix as the measurement matrix and realized it by phase mask method. We researched complementary matching pursuit algorithm and selected it as the recovery algorithm. In order to adapt to the moving target and decrease imaging time, we take use of area infrared focal plane array to acquire multiple measurements at one time. Theoretically, the method breaks though Nyquist sampling theorem and can greatly improve the spatial resolution of the infrared image. The last image contrast and experiment data indicate that our method is effective in improving resolution of infrared images and is superior than some traditional super-resolution imaging method. The compressed sensing super-resolution method is expected to have a wide application prospect.
机译:传统的红外超分辨率成像方法的理论基础是奈奎斯特采样定理。重建的前提是低分辨率图像序列中红外物体的相对位置应保持固定,并且图像恢复装置是不适定问题的逆运算,没有固定的规则。红外图像的超分辨率重建能力,算法的应用范围和重建算法的稳定性受到限制。为此,本文提出了一种基于压缩感知的超分辨率重建方法。在该方法中,我们选择Toeplitz矩阵作为测量矩阵,并通过相位掩膜法实现。我们研究了互补匹配追踪算法并将其选择为恢复算法。为了适应运动目标并减少成像时间,我们使用区域红外焦平面阵列来一次获取多个测量值。从理论上讲,该方法突破了奈奎斯特采样定理,可以大大提高红外图像的空间分辨率。最后的图像对比度和实验数据表明,我们的方法在提高红外图像分辨率方面是有效的,并且优于某些传统的超分辨率成像方法。压缩传感超分辨率方法有望具有广阔的应用前景。

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