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Counting of RBCs and WBCs in noisy normal blood smear microscopic images

机译:嘈杂的正常血液涂片显微图像中的红细胞和白细胞计数

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This work focuses on the segmentation and counting of peripheral blood smear particles which plays a vital role in medical diagnosis. Our approach profits from some powerful processing techniques. Firstly, the method used for denoising a blood smear image is based on the Bivariate wavelet. Secondly, image edge preservation uses the Kuwahara filter. Thirdly, a new binarization technique is introduced by merging the Otsu and Niblack methods. We have also proposed an efficient step-by-step procedure to determine solid binary objects by merging modified binary, edged images and modified Chan-Vese active contours. The separation of White Blood Cells (WBCs) from Red Blood Cells (RBCs) into two sub-images based on the RBC (blood's dominant particle) size estimation is a critical step. Using Granulometry, we get an approximation of the RBC size. The proposed separation algorithm is an iterative mechanism which is based on morphological theory, saturation amount and RBC size. A primary aim of this work is to introduce an accurate mechanism for counting blood smear particles. This is accomplished by using the Immersion Watershed algorithm which counts red and white blood cells separately. To evaluate the capability of the proposed framework, experiments were conducted on normal blood smear images. This framework was compared to other published approaches and found to have lower complexity and better performance in its constituent steps; hence, it has a better overall performance.
机译:这项工作侧重于对医学诊断中发挥至关重要作用的外周血涂片颗粒的分割和计数。我们从一些强大的处理技术中获利的利润。首先,用于去噪血液涂抹​​图像的方法基于双抗体小波。其次,图像边缘保存使用Kuwahara过滤器。第三,通过合并OTSU和Niblack方法来引入新的二值化技术。我们还提出了一种有效的逐步过程,通过合并修改的二进制,边缘图像和修改的Chan-Vesce Contours来确定固体二进制物体。基于RBC(血液的显性粒子)尺寸估计,将红细胞(WBC)从红细胞(RBC)分离成两个子图像是关键步骤。使用粒度测量法,我们得到RBC大小的近似。所提出的分离算法是一种迭代机制,其基于形态学理论,饱和量和RBC尺寸。这项工作的主要目的是引入计数血液涂片颗粒的准确机制。这是通过使用浸没流域算法分别计算红色和白细胞的算法来实现。为了评估所提出的框架的能力,在正常血液涂片图像上进行实验。将该框架与其他公布的方法进行比较,发现在其组成步骤中具有较低的复杂性和更好的性能;因此,它具有更好的整体性能。

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