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首页> 外文期刊>IEEE Transactions on Medical Imaging >MitoGen: A Framework for Generating 3D Synthetic Time-Lapse Sequences of Cell Populations in Fluorescence Microscopy
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MitoGen: A Framework for Generating 3D Synthetic Time-Lapse Sequences of Cell Populations in Fluorescence Microscopy

机译:MitoGen:在荧光显微镜下生成细胞群体的3D合成延时序列的框架

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摘要

The proper analysis of biological microscopy images is an important and complex task. Therefore, it requires verification of all steps involved in the process, including image segmentation and tracking algorithms. It is generally better to verify algorithms with computer-generated ground truth datasets, which, compared to manually annotated data, nowadays have reached high quality and can be produced in large quantities even for 3D time-lapse image sequences. Here, we propose a novel framework, called MitoGen, which is capable of generating ground truth datasets with fully 3D time-lapse sequences of synthetic fluorescence-stained cell populations. MitoGen shows biologically justified cell motility, shape and texture changes as well as cell divisions. Standard fluorescence microscopy phenomena such as photobleaching, blur with real point spread function (PSF), and several types of noise, are simulated to obtain realistic images. The MitoGen framework is scalable in both space and time. MitoGen generates visually plausible data that shows good agreement with real data in terms of image descriptors and mean square displacement (MSD) trajectory analysis. Additionally, it is also shown in this paper that four publicly available segmentation and tracking algorithms exhibit similar performance on both real and MitoGen-generated data. The implementation of MitoGen is freely available.
机译:正确地分析生物显微镜图像是一项重要而复杂的任务。因此,它需要验证过程中涉及的所有步骤,包括图像分割和跟踪算法。通常,最好使用计算机生成的地面真实数据集来验证算法,与人工注释的数据相比,如今这些数据已经达到了高质量,即使对于3D延时图像序列也可以大量生产。在这里,我们提出了一个名为MitoGen的新颖框架,该框架能够生成具有真实3D延时序列的地面真相数据集,这些序列具有合成荧光染色的细胞群体。 MitoGen显示生物学上合理的细胞运动性,形状和质地变化以及细胞分裂。模拟标准荧光显微镜现象,例如光漂白,带实点扩散函数(PSF)的模糊以及几种类型的噪声,以获得逼真的图像。 MitoGen框架可以在空间和时间上进行扩展。 MitoGen生成的视觉上可信的数据在图像描述符和均方位移(MSD)轨迹分析方面显示出与真实数据的良好一致性。此外,本文还显示,四种公开可用的分段和跟踪算法在真实数据和MitoGen生成的数据上均表现出相似的性能。 MitoGen的实现是免费提供的。

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