离焦深度作为强度输运方程的一个特例

Emma Alexander, Leyla A. Kabuli, O. Cossairt, L. Waller
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引用次数: 2

摘要

显微镜中的强度传递方程(TIE)和摄影中的微分离焦深度(DfDD)方法都描述了离焦的微小变化对图像强度的影响。它们基于不同的假设,可能看起来相互矛盾。使用Wigner分布函数,我们表明DfDD可以解释为TIE的一种特殊情况,非常适合于由TIE恢复的广义相位测量与深度而不是相位相关的应用,例如摄影和荧光显微镜。空间相干性水平被认为是在每种技术的有用性之间权衡的驱动因素。具体来说,广义相位对应于高相干照明下样品的相位,并显示低相干设置下的场景深度。当相干性在空间上变化时,如在多模态相位和荧光显微镜中,我们表明在图像的不同区域可以获得互补信息。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Depth from Defocus as a Special Case of the Transport of Intensity Equation
The Transport of Intensity Equation (TIE) in microscopy and the Depth from Differential Defocus (DfDD) method in photography both describe the effect of a small change in defocus on image intensity. They are based on different assumptions and may appear to contradict each other. Using the Wigner Distribution Function, we show that DfDD can be interpreted as a special case of the TIE, well-suited to applications where the generalized phase measurements recovered by the TIE are connected to depth rather than phase, such as photography and fluorescence microscopy. The level of spatial coherence is identified as the driving factor in the trade-off between the usefulness of each technique. Specifically, the generalized phase corresponds to the sample's phase under high-coherence illumination and reveals scene depth in low-coherence settings. When coherence varies spatially, as in multi-modal phase and fluorescence microscopy, we show that complementary information is available in different regions of the image.
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