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An image-processing method to detect sub-optical features based on understanding noise in intensity measurements

机译:一种基于强度测量中的理解噪声来检测子光学特征的图像处理方法

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Accurate quantitative analysis of image data requires that we distinguish between fluorescence intensity (true signal) and the noise inherent to its measurements to the extent possible. We image multilamellar membrane tubes and beads that grow from defects in the fluid lamellar phase of the lipid 1,2-dioleoyl-sn-glycero-3-phosphocholine dissolved in water and water-glycerol mixtures by using fluorescence confocal polarizing microscope. We quantify image noise and determine the noise statistics. Understanding the nature of image noise also helps in optimizing image processing to detect sub-optical features, which would otherwise remain hidden. We use an image-processing technique "optimum smoothening" to improve the signal-to-noise ratio of features of interest without smearing their structural details. A high SNR renders desired positional accuracy with which it is possible to resolve features of interest with width below optical resolution. Using optimum smoothening, the smallest and the largest core diameter detected is of width and nm, respectively, discussed in this paper. The image-processing and analysis techniques and the noise modeling discussed in this paper can be used for detailed morphological analysis of features down to sub-optical length scales that are obtained by any kind of fluorescence intensity imaging in the raster mode.
机译:准确的图像数据定量分析要求我们区分荧光强度(真实信号)和在可能的测量中固有的噪声。通过使用荧光共聚焦偏振显微镜,我们将来自脂质1,2-二脲-Sn-甘油-3-普华啉的脂质1,2-二脲-Sn-甘油-3-普华啉的流体层状相的缺陷生长的多岩膜管和珠子。我们量化图像噪声并确定噪声统计信息。了解图像噪声的性质也有助于优化图像处理以检测子光学功能,否则将保持隐藏。我们使用图像处理技术“最佳平滑”来提高感兴趣的特征的信噪比而不涂抹其结构细节。高SNR呈现所需的位置精度,可以解决具有低于光学分辨率的宽度的感兴趣的特征。使用最佳平滑,检测到的最小和最大的芯直径分别是宽度和nm,本文讨论。本文讨论的图像处理和分析技术和噪声建模可用于通过在光栅模式下通过任何类型的荧光强度成像获得的子光学长度尺度的特征的详细形态分析。

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