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Morphological Image Processing and Blob Analysis for Red Blood Corpuscles Segmentation and Counting

机译:红血尸体分割和计数的形态学图像处理和BLOB分析

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This paper presents a proposed procedure using a morphological image processing on a 960×720 pixels blood sample image. The principles of hemocytometer counting method were also performed to count and compare the output readings from the laboratory results. The red blood corpuscles (RBC) count is one of the essential elements that medical practitioners used for medical diagnosis of patients. Because of the morphological features of the RBC on the image file, different approach yields in the processing including image enhancement to reveal certain features such as edges and contours in the RBC. The concavity in the RBC was useful in the blob analysis with the watershed algorithm that leads to the segmentation of overlapping cells in clusters. The proposed procedure gives 96.042% accuracy for female test subject and 95.559% on the male test subject using two trials each with ten samples on each trial. The proposed procedure is successful by getting a results compared to the manual count performed in the laboratory. The use of the application program created using MatLab for blob analysis yield a good results in recognizing red cells and for counting each segmented cells.
机译:本文呈现了在960×720像素血液样本图像上使用形态图像处理的提出的程序。还进行了血细胞计数计数方法的原理,以计算并比较实验室结果的输出读数。红血尸体(RBC)计数是用于医疗诊断患者的医学从业者的基本要素之一。由于RBC对图像文件的形态学特征,处理中的不同方法产生包括图像增强,以揭示RBC中的某些特征,例如边缘和轮廓。 RBC中的凹陷在利用流域算法的BLOB分析中是有用的,该算法导致群集中重叠的单元的分割。该拟议的程序为女性检测酶的96.042 %精度和每次试验中有10个样本的两项试验,每次试验给予男性检测患者的95.55.59 %。通过在实验室中执行的手动计数相比,所提出的程序是成功的。使用MATLAB创建的应用程序for BLOB分析产生了良好的效果,可以识别红细胞并计数每个分段的细胞。

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