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TOWARDS AN IMAGE ANALYSIS TOOLBOX FOR HIGH-THROUGHPUT DROSOPHILA EMBRYO RNAI SCREENS

机译:面向高吞吐能力果蝇胚RNAI荧光屏的图像分析工具箱

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We build an image analysis toolbox for high-throughput Drosophila embryo RNAi screens. The goal is to tag the embryo as normal, developmentally delayed or abnormal based on the ventral furrow formation. We break the problem into two parts: in the first, we detect the developmental stage based on the progress of the ventral furrow formation, and in the second, we tag the embryo as normal/developmentally delayed/abnormal based on the stage detected and the elapsed time. The crux of the algorithm is the multiresolution classifier, and we show that, by classifying in multiresolution spaces, we obtain better results than by classifying the embryo image alone. The final 2D accuracy obtained was 93.17%, while by using 3D information, it increased to 98.35%
机译:我们建立了一个用于高通量果蝇胚胎RNAi筛选的图像分析工具箱。目的是根据腹沟的形成将胚胎标记为正常,发育延迟或异常。我们将问题分为两部分:第一部分,我们根据腹沟形成的进度来检测发育阶段;第二部分,根据检测到的阶段以及胚胎的发育状况,将胚胎标记为正常/发育延迟/异常。经过的时间。该算法的关键是多分辨率分类器,并且我们证明了,通过在多分辨率空间中进行分类,与仅对胚胎图像进行分类相比,我们可以获得更好的结果。最终获得的2D精度为93.17%,而通过使用3D信息,则提高到98.35%

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