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Single sperm tracking using Intersect Cortical Model-Mean Shift Method

机译:使用相交的皮质模型 - 平均换档方法进行单一精子跟踪

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Single sperm detection and tracking has received increasing attentions since In Vitro Fertilization (IVF) and Intracytoplasmic Sperm Injection (ICSI) techniques were introduced. In this paper, we proposed an automated system to extract and track single sperm movement. Intersect Cortical Model (ICM) which is derived from Pulse Coupled Neural Network (PCNN) is employed to extract region coordinates and the centroid of the sperm head region. By using the extracted region and centroid as an automated initialization in the proposed method, mean shift based tracking algorithm is then used to track the sperm for the entire video. As a comparison, the proposed method Intersect Cortical Model-Mean shift (ICMMS) has been evaluated with conventional mean shift based tracking method. From the results, the proposed ICMMS method remedies the drawback of mean shift based tracking algorithm by providing more accurate and robust tracking results. After testing with 100 sperm images, less misdetection of sperm has been observed from the results produced by the proposed ICMMS method. In future, the proposed method is expected to be implemented in analyzing male infertility.
机译:单个精子检测和跟踪已经收到了增加的注意力,因为介绍了体外施肥(IVF)和氏肾上腺素精子注射(ICSI)技术。在本文中,我们提出了一种自动化系统来提取和跟踪单个精子运动。从脉冲耦合神经网络(PCNN)导出的间隙皮质模型(ICM)用于提取区域坐标和精子头区域的质心。通过使用提取的区域和质心作为所提出的方法的自动初始化,然后使用基于平均换档的跟踪算法来跟踪整个视频的精子。作为比较,通过基于常规平均换档的跟踪方法评估了所提出的方法与皮质模型 - 平均转移(ICMMS)进行了评估。从结果中,所提出的ICMMS方法通过提供更准确和坚固的跟踪结果来补救基于换档跟踪算法的缺点。在用100个精子图像进行测试之后,已经从所提出的ICMMS方法产生的结果中观察到精子的误差。未来,预计该方法将在分析男性不孕症时实施。

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