首页> 外文会议>IEEE International Symposium on Biomedical Imaging: From Nano to Macro >Automatic identification and delineation of germ layer components in Hon6;E stained images of teratomas derived from human and nonhuman primate embryonic stem cells
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Automatic identification and delineation of germ layer components in Hon6;E stained images of teratomas derived from human and nonhuman primate embryonic stem cells

机译:Hon6; E染色的人和非人灵长类胚胎干细胞来源的畸胎瘤的细菌层成分的自动鉴定和描绘

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We present a methodology for the automatic identification and delineation of germ-layer components in Hon6;E stained images of teratomas derived from human and nonhuman primate embryonic stem cells. A knowledge and understanding of the biology of these cells may lead to advances in tissue regeneration and repair, the treatment of genetic and developmental syndromes, and drug testing and discovery. As a teratoma is a chaotic organization of tissues derived from the three primary embryonic germ layers, Hon6;E teratoma images often present multiple tissues, each of having complex and unpredictable positions, shapes, and appearance with respect to each individual tissue as well as with respect to other tissues. While visual identification of these tissues is time-consuming, it is surprisingly accurate, indicating that there exist enough visual cues to accomplish the task. We propose automatic identification and delineation of these tissues by mimicking these visual cues. We use pixel-based classification, resulting in an encouraging range of classification accuracies from 74.9% to 93.2% for 2- to 5-tissue classification experiments at different scales.
机译:我们提出了一种自动识别和描述Hon6; E染色的畸胎瘤中人与非人灵长类胚胎干细胞来源的细菌层成分的方法。对这些细胞生物学的了解和了解可能会导致组织再生和修复,遗传和发育综合症的治疗以及药物测试和发现方面的进步。由于畸胎瘤是从三个主要的胚芽层Hon6; E衍生而来的组织的混乱组织,Hon6; E畸胎瘤图像通常呈现出多个组织,每个组织相对于每个单独的组织以及每个组织都具有复杂且不可预测的位置,形状和外观。相对于其他组织。这些组织的视觉识别很耗时,但出奇的准确,表明存在足够的视觉线索来完成任务。我们建议通过模仿这些视觉提示来自动识别和描绘这些组织。我们使用基于像素的分类,对于2到5个组织的不同规模的分类实验,分类精度范围从74.9%到93.2%令人鼓舞。

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