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MIST: Accurate and Scalable Microscopy Image Stitching Tool with Stage Modeling and Error Minimization

机译:MIST:精确且可扩展的显微镜图像拼接工具具有工作台建模和误差最小化

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摘要

Automated microscopy can image specimens larger than the microscope’s field of view (FOV) by stitching overlapping image tiles. It also enables time-lapse studies of entire cell cultures in multiple imaging modalities. We created MIST (Microscopy Image Stitching Tool) for rapid and accurate stitching of large 2D time-lapse mosaics. MIST estimates the mechanical stage model parameters (actuator backlash, and stage repeatability ‘r’) from computed pairwise translations and then minimizes stitching errors by optimizing the translations within a (4r)2 square area. MIST has a performance-oriented implementation utilizing multicore hybrid CPU/GPU computing resources, which can process terabytes of time-lapse multi-channel mosaics 15 to 100 times faster than existing tools. We created 15 reference datasets to quantify MIST’s stitching accuracy. The datasets consist of three preparations of stem cell colonies seeded at low density and imaged with varying overlap (10 to 50%). The location and size of 1150 colonies are measured to quantify stitching accuracy. MIST generated stitched images with an average centroid distance error that is less than 2% of a FOV. The sources of these errors include mechanical uncertainties, specimen photobleaching, segmentation, and stitching inaccuracies. MIST produced higher stitching accuracy than three open-source tools. MIST is available in ImageJ at isg.nist.gov.
机译:自动显微镜可以通过缝合重叠的图像块来对大于显微镜视场(FOV)的标本进行成像。它还可以采用多种成像方式对整个细胞培养物进行延时研究。我们创建了MIST(显微镜图像拼接工具),用于快速准确地拼接大型2D延时马赛克。 MIST根据计算出的成对平移来估算机械平台模型参数(执行器间隙和平台重复性“ r”),然后通过在(4r) 2 正方形区域内优化平移来最小化缝合误差。 MIST采用多核CPU / GPU混合计算资源以性能为导向,可处理TB级的延时多通道拼接图,其速度比现有工具快15至100倍。我们创建了15个参考数据集来量化MIST的拼接精度。数据集由三种低密度接种的干细胞集落制备物组成,并以不同的重叠度(10%至5​​0%)成像。测量1150个菌落的位置和大小,以量化缝合精度。 MIST生成的拼接图像的平均质心距离误差小于FOV的2%。这些错误的来源包括机械不确定性,样本光漂白,分割和缝合不准确。 MIST产生的缝合精度高于三种开源工具。 MIST可在isg.nist.gov的ImageJ中获得。

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