Detection of Sickle Cell Disease Based on an Improved Watershed Segmentation

Hala Algailani, M. Hamad
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引用次数: 8

Abstract

Sickle cell disease (SCD) is the most popular inherited blood disease, that red blood cells change its shape form circular shape to sickle shape and loses its main job which carries oxygen throughout the body. The watershed segmentation method has become highly developed for automated analysis of overlapping red blood cell microscopic images. The aim of this work is to suppress over segmentation problem which is a major drawback of the watershed algorithm. The experimental results showed that, watershed is most effective when done on filtered image using non local means denoising method. The effectiveness of the proposed method is validated by analyzing the image segmentation quality measures. The proposed method provides higher performance in term of accuracy, sensitivity and specificity factors.
基于改进分水岭分割的镰状细胞病检测
镰状细胞病(SCD)是一种最常见的遗传性血液病,红细胞由圆形变为镰状,失去了向全身输送氧气的主要功能。分水岭分割方法已成为高度发达的自动化分析重叠红细胞显微图像。这项工作的目的是抑制过度分割问题,这是分水岭算法的一个主要缺点。实验结果表明,用非局部均值去噪方法对滤波后的图像进行分水岭去噪是最有效的。通过对图像分割质量指标的分析,验证了该方法的有效性。该方法在准确度、灵敏度和特异度方面均有较高的性能。
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