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Predicting Human Embryos' Implantation Outcome from a Single Blastocyst Image

机译:从单个胚泡图像预测人类胚胎的植入结果

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Only one-third of embryo transfer cycles via invitro fertilization, the most common fertility treatment, leads to a clinical pregnancy. Identifying embryos with the highest potentials for transfer is an essential step to optimize in-vitro fertilization outcome. However, human embryos are complicated by nature and some of their developmental aspects has still remained a mystery to expert biologists. In this paper, the first-ever attempt is made to estimate probability of implantation using a single blastocyst image. First, a semantic segmentation system is proposed for human blastocyst components in microscopic images. Second, a multi-stream classification model is proposed for the prediction of embryos' implantation outcome. The proposed classification model features an architectural component, Compact-Contextualize-Calibrate (C3) to guide the feature extraction process and a slow-fusion strategy to learn cross-modality features. Experimental results confirm that the proposed method delivers the first-reported implantation outcome prediction via a single blastocyst image to date with a mean accuracy of 70.9%.
机译:通过invitro施用,最常见的生育治疗只有三分之一的胚胎转移循环,导致临床妊娠。鉴定具有最高电位的胚胎是优化体外施肥结果的重要步骤。然而,人类胚胎对自然复杂,其一些发展方面仍然是专家生物学家的谜。在本文中,首先尝试使用单个胚泡图像来估计植入概率。首先,在微观图像中提出了对人胚性组分的语义分割系统。其次,提出了一种用于预测胚胎植入结果的多流分类模型。所提出的分类模型具有架构组件,紧凑型 - 上下文化校准(C 3 )指导特征提取过程和慢融合策略来学习跨模型功能。实验结果证实,该方法通过单个胚泡图像提供了第一报告的植入结果预测,迄今为止迄今为止的平均准确性为70.9%。

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