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Large-scale automated identification of mouse brain cells in confocal light sheet microscopy images

机译:共聚焦光片显微镜图像中小鼠脑细胞的大规模自动识别

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Motivation: Recently, confocal light sheet microscopy has enabled high-throughput acquisition of whole mouse brain 3D images at the micron scale resolution. This poses the unprecedented challenge of creating accurate digital maps of the whole set of cells in a brain. Results: We introduce a fast and scalable algorithm for fully automated cell identification. We obtained the whole digital map of Purkinje cells in mouse cerebellum consisting of a set of 3D cell center coordinates. The method is accurate and we estimated an F-1 measure of 0.96 using 56 representative volumes, totaling 1.09 GVoxel and containing 4138 manually annotated soma centers.
机译:动机:最近,共聚焦光片显微镜技术已经能够以微米级的分辨率高通量采集整个小鼠大脑3D图像。这对创建大脑中整个细胞的精确数字地图提出了前所未有的挑战。结果:我们介绍了一种快速且可扩展的算法,用于全自动细胞鉴定。我们获得了由一组3D细胞中心坐标组成的小鼠小脑浦肯野细胞的整个数字地图。该方法是准确的,我们估计使用56个代表性体积的F-1测量值为0.96,总计1.09 GVoxel,并包含4138个手动注释的体细胞中心。

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