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A System for Counting Fetal and Maternal Red Blood Cells

机译:胎儿和母体红细胞计数系统

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摘要

The Kleihauer–Betke (KB) test is the standard method for quantitating fetal-maternal hemorrhage in maternal care. In hospitals, the KB test is performed by a certified technologist to count a minimum of 2000 fetal and maternal red blood cells (RBCs) on a blood smear. Manual counting suffers from inherent inconsistency and unreliability. This paper describes a system for automated counting and distinguishing fetal and maternal RBCs on clinical KB slides. A custom-adapted hardware platform is used for KB slide scanning and image capturing. Spatial-color pixel classification with spectral clustering is proposed to separate overlapping cells. Optimal clustering number and total cell number are obtained through maximizing cluster validity index. To accurately identify fetal RBCs from maternal RBCs, multiple features including cell size, roundness, gradient, and saturation difference between cell and whole slide are used in supervised learning to generate feature vectors, to tackle cell color, shape, and contrast variations across clinical KB slides. The results show that the automated system is capable of completing the counting of over 60 000 cells (versus 2000 by technologists) within 5 min (versus 15 min by technologists). The throughput is improved by approximately 90 times compared to manual reading by technologists. The counting results are highly accurate and correlate strongly with those from benchmarking flow cytometry measurement.
机译:Kleihauer-Betke(KB)测试是定量母婴保健中胎儿-母体出血的标准方法。在医院中,KB测试是由经过认证的技术人员进行的,目的是对血液涂片中至少2000个胎儿和产妇的红细胞(RBC)进行计数。手动计数存在固有的不一致和不可靠性。本文介绍了一种用于自动计数和区分临床KB幻灯片上的胎儿和母亲RBC的系统。定制的硬件平台用于KB幻灯片扫描和图像捕获。提出了具有光谱聚类的空间颜色像素分类来分离重叠单元。通过使聚类有效性指数最大化来获得最佳聚类数和总细胞数。为了从母体红细胞中准确识别胎儿红细胞,在监督学习中使用了多个特征,包括细胞大小,圆度,梯度和细胞与整个玻片之间的饱和度差异,以生成特征向量,以解决整个临床知识库中细胞的颜色,形状和对比度变化幻灯片。结果表明,该自动化系统能够在5分钟内(相对于技术人员15分钟)完成超过6万个细胞的计数(相对于技术人员2000个)。与技术人员的手动阅读相比,吞吐量提高了大约90倍。计数结果高度准确,并且与基准流式细胞术测量结果高度相关。

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