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Small-kernel superresolution methods for microscanning imaging systems

机译:用于微扫描成像系统的小核超分辨率方法

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摘要

Two computationally efficient methods for superresolution reconstruction and restoration of microscanning imaging systems are presented. Microscanning creates multiple low-resolution images with slightly different sample-scene phase shifts. The digital processing methods developed here combine the low-resolution images to produce an image with higher pixel resolution (i.e., superresolution) and higher fidelity. The methods implement reconstruction to increase resolution and restoration to improve fidelity in one-pass convolution with a small kernel. One method uses a small-kernel Wiener filter and the other method uses a parametric cubic convolution filter. Both methods are based on an end-to-end, continuous-discrete-continuous microscanning imaging system model. Because the filters are constrained to small spatial kernels they can be efficiently applied by convolution and are amenable to adaptive processing and to parallel processing. Experimental results with simulated imaging and with real microscanned images indicate that the small-kernel methods efficiently and effectively increase resolution and fidelity.
机译:提出了两种用于超分辨率重建和微扫描成像系统恢复的高效计算方法。显微扫描可创建多个低分辨率图像,且样品场景相移略有不同。这里开发的数字处理方法结合了低分辨率图像以产生具有更高像素分辨率(即,超分辨率)和更高保真度的图像。该方法实现重建以提高分辨率,并进行恢复以提高在具有小核的一遍卷积中的保真度。一种方法使用小核维纳滤波器,另一种方法使用参数三次卷积滤波器。两种方法都基于端到端,连续离散连续微扫描成像系统模型。因为滤波器被限制在较小的空间核中,所以它们可以通过卷积有效地应用,并且适合于自适应处理和并行处理。模拟成像和真实显微扫描图像的实验结果表明,小内核方法可以有效地提高分辨率和保真度。

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