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中科院长春光学精密机械与物理研究所2. 中科院长春光机所
收稿日期:2009-06-30,
修回日期:2009-09-22,
网络出版日期:2009-10-20,
纸质出版日期:2009-10-20
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刘妍妍,张新. 利用异形像元探测器的超分辨成像方法[J]. 光学精密工程, 2009,17(10):2620-2627
Liu Yan-Yan, Xin Zhang. Super-resolution imaging method with detectors of special-shaped pixels[J]. Optics and precision engineering, 2009, 17(10): 2620-2627.
随着光学成像全面进入光电数字成像时代,大多数成像系统的空间分辨率受限于探测器,所以提高探测器分辨率成为高分辨光电成像系统中的核心问题。而探测器的低分辨率主要是由于低采样频率和像元感光区的孔径效应而造成。最直接的解决方法就是减小像元尺寸,但会降低其他性能参数;针对最主要的限制因素——采样频率不足,目前多采用基于过采样原理的超分辨重建技术,通过提高探测器采样的频率来提高探测器的空间分辨率,但是其提升效果受到像元孔径效应的制约。为了进一步提高探测器受限的成像系统的空间分辨率,提出一种基于异形像元探测器的超分辨成像方法,将两列线阵异形像元探测器亚像元推扫实现像元细分,然后利用两列探测器所输出的灰度矩阵信息,重建出最终的高分辨图像。并分别通过理论评估和具体实验两方面验证该方法可以同时提高探测器的采样频率和截止频率,拓展带宽,从而实现高分辨率的目的。
As optical imaging era transits to electro-optical (E-O) imaging one generally
spatial resolution is mainly limited by detectors for the overwhelming majority of imaging systems. It is obvious that the prior is to enhance detector resolution for high-resolved or even super-resolved imaging system. The spatial resolution of detector mainly depends on the effects of both the sampling process and the size and shape of active area. So far
there have been two main categories of solutions: one is the straightforward method of fabricating very small pixel
but it has a limit and causes some performances of detector going down; the other is called as super-resolution reconstruction
which is to solve undersampling phenomenon caused by insufficient sampling frequency. It is to decrease aliasing and increase spatial resolution based on the oversampling theory
but it has large limitation for it has another limitation that is the aperture effect of pixel. According to the pros and cons above
a new method is proposed based on special-shaped detectors for increasing simultaneously both the sampling frequency and the detector cutoff which depends on the aperture effect of pixel in spectral domain. It is realized with two detector-arrays of special-shaped pixel where each pixel is deducted a quarter. It is proved that if a small plot of active area per pixel is deducted and the frequency-response distribution of the complement will equal to that of the deducted part without consideration of the amplitude. And then multiple mis-registered frames available are used to solve the grayscale matrix and reconstruct the super-resolution image in the post-detector processing. It can not only enhance the detector resolution
but also weigh rationally the other performances. Finally it is analyzed and proved through theoretical assessment and specific experiment that the imaging method with detectors of special-shaped pixels should improve spatial resolution better for the detector-limited systems.
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