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首页> 外文期刊>IEEE transactions on circuits and systems . I , Regular papers >Automated Segmentation of Drosophila RNAi Fluorescence Cellular Images Using Deformable Models
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Automated Segmentation of Drosophila RNAi Fluorescence Cellular Images Using Deformable Models

机译:果蝇RNAi荧光细胞图像使用可变形模型的自动分割

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Image-based high-throughput genome-wide RNA interference (RNAi) experiments are increasingly carried out to facilitate the understanding of gene functions in intricate biological processes. Robust automated segmentation of the large volumes of output images generated from image-based screening is much needed for data analyses. In this paper, we propose a new automated segmentation technique to fill the void. The technique consists of two steps: nuclei and cytoplasm segmentation. In the former step, nuclei are extracted, labeled, and used as starting points for the latter step. A new force obtained from rough segmentation is introduced into the classical level set curve evolution to improve the performance for odd shapes, such as spiky or ruffly cells. A scheme of preventing curve intersection is proposed to treat the difficulty of segmenting touching cells. Synthetic images are generated to test the capabilities of our approach. Then, we apply it to three types of Drosophila cells in RNAi fluorescence images. In all cases, accuracy of greater than 92% is obtained
机译:越来越多地进行基于图像的高通量全基因组RNA干扰(RNAi)实验,以促进对复杂生物学过程中基因功能的理解。数据分析非常需要对基于图像的筛选生成的大量输出图像进行可靠的自动分割。在本文中,我们提出了一种新的自动分割技术来填补空白。该技术包括两个步骤:细胞核和细胞质分割。在前一步中,提取,标记核并将其用作后一步的起点。从粗糙分割中获得的新力被引入到经典的水平集曲线演变过程中,以改善奇形形状(如尖刺细胞或r细胞)的性能。提出了一种防止曲线相交的方案,以解决分割触摸单元的困难。生成合成图像以测试我们方法的功能。然后,我们将其应用于RNAi荧光图像中的三种果蝇细胞。在所有情况下,获得的准确度均超过92%

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