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Segmentation of Parasites for High-Content Screening Using Phase Congruency and Grayscale Morphology

机译:使用相一致和灰度形态学进行高内涵筛选的寄生虫分割

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Schistosomiasis is a parasitic disease with a global health impact second only to malaria. The World Health Organization has determined new therapies for schistosomiasis are urgently needed, however the causative parasite is refractory to high-throughput drug screening due to the need for a human expert to analyze the effects of putative drugs. Currently, there is no vision system capable of relieving this bottleneck with sufficient accuracy for the automated analysis of parasite phenotypes. We presented a region-based method with performance limited primarily by poor edge detection caused by body irregularities, groups of touching parasites and unpredictable effects of drug exposure. Towards ameliorating this difficulty, we propose an edge detector utilizing phase congruency and grayscale thinning. The detector can be used to impose the correct topology on a segmented image - an essential step towards accurate segmentation of parasites.
机译:血吸虫病是一种寄生虫病,对健康的全球影响仅次于疟疾。世界卫生组织已确定迫切需要针对血吸虫病的新疗法,但是由于需要人类专家来分析推定药物的效果,因此致病性寄生虫对于高通量药物筛查是难治的。当前,没有视觉系统能够以足够的准确度消除瓶颈,以自动分析寄生虫表型。我们提出了一种基于区域的方法,该方法的性能主要受身体不规则引起的不良边缘检测,接触寄生虫的群体以及药物暴露的不可预测的影响所限制。为了缓解这一困难,我们提出了一种利用相位一致性和灰度细化的边缘检测器。该检测器可用于将正确的拓扑结构强加在已分割的图像上-这是朝着准确分割寄生虫的关键一步。

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