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Hybrid generative-discriminative learning for online tracking of sperm cell

机译:混合生成-判别学习用于在线跟踪精子细胞

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Sperm motility is an essential metric for evaluation of human semen quality. Computer-assisted sperm analysis (CASA) aims at objective assessthent of sperm motility by trajectory construction and an-alysis, where online single sperm tracking is a crucial step for the intracytoplasmic sperm injection (ICSI). Most existing sperm tracking approaches are error-prone to handle the large uncertainty of sperm motion and the background distracters in optical microscopy, leading to inaccurate inference of the sperm moti-lity in CASA. To this end, we propose in this work a hybrid generative-discriminative tracker (HGDT) for online single sperm tracking. HGDT retains most of the desirable properties (explicit appearance modeling, for example) of generative trackers, while improving the classification performance to separate the visual sperm from the background distracters. To deal with the large motion uncertainty of the sperm cell, an energy-biased stochastic approximation Monte Carlo (EB-SAMC) sampling algorithm is proposed for more effective Bayesian tracking. Experiments results on several clinical videos demonstrate the efficacy of our method, as well as the superiority to several state-of-the-art methods in terms of tracking accuracy and computational efficiency. (C) 2016 Elsevier B.V. All rights reserved.
机译:精子活力是评估人类精液质量的重要指标。计算机辅助精子分析(CASA)旨在通过轨迹构建和分析来客观评估精子活力,其中在线单个精子跟踪是胞浆内精子注射(ICSI)的关键步骤。大多数现有的精子追踪方法易于出错,以处理较大的不确定性精子运动和光学显微镜中的背景干扰物,从而导致对CASA中精子运动性的推断不准确。为此,我们在这项工作中提出了一种用于在线单精子跟踪的混合型生成-鉴别跟踪器(HGDT)。 HGDT保留了生成跟踪器的大多数理想属性(例如,显式外观建模),同时提高了分类性能,将视觉精子与背景干扰物分开。为了解决精子细胞运动不确定性大的问题,提出了一种能量偏置的随机蒙特卡罗(EB-SAMC)采样算法,以实现更有效的贝叶斯跟踪。在多个临床视频上的实验结果证明了我们方法的有效性,以及在跟踪准确性和计算效率方面优于几种最新方法的优势。 (C)2016 Elsevier B.V.保留所有权利。

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