基于自适应阈值算法的禽血细胞自动检测

Kantaphon Meechart, S. Auethavekiat, V. Sa-Ing
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引用次数: 2

摘要

就世界肉类市场的产量而言,鸡肉工业在世界上排名第十。红细胞(RBC)计数是出口肉类行业要求的基本健康筛查方案之一。然而,由于鸟类血液的形状(椭圆)与哺乳动物血液的形状(圆形)不同,人类的自动血液分析仪不能应用于鸟类的红细胞。本文提出了禽红细胞自动计数的两阶段阈值技术。首先,采用Otsu阈值法将血液涂片二值化为红细胞和非红细胞区域。然后,重新应用图像形态学和Otsu阈值法检测血核。然后,应用连接成分分析来计算RBC的数量。实验表明,该方法操作简单,计数错误率(2.23%)远低于临床可接受值(5%)。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
An Automatic Detection for Avian Blood Cell based on Adaptive Thresholding Algorithm
The chicken industry ranks tenth in the world in term of output in the world meat market. Red blood cell (RBC) count is one of the basic health screening protocol required in an exported meat industry. However, the human’s automated blood analyzer cannot be applied to avian RBC, because the shape of avian blood (ellipse) is different from the mammal one (circle). In this paper, we propose 2-stage thresholding technique for automatic avian RBC counting. First, the blood smear slide is binarized into RBC and non-RBC area by applying Otsu thresholding. Then, image morphology and Otsu thresholding are reapplied to detect the blood nucleus. After that, the connected component analysis is applied to count the number of RBC. The experiment demonstrated that the proposed technique was simple and provided the count with error rate (2.23%) much less than the clinically acceptable value (5%).
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