A fuzzy based classifier for diagnosis of acute lymphoblastic leukemia using blood smear image processing

M. A. Khosrosereshki, M. Menhaj
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引用次数: 11

Abstract

Leukemia is a kind of blood disorder and its early diagnosis plays an important role in preventing the rapid progression of the disease. The main objective of the research is how to use fuzzy concepts for deriving a proper classifier for diagnosis of this disorder in microscopic image of a patient's peripheral blood smears. Analysis of blood image usually results in early diagnosis of leukemia with lower costs. Furthermore, disease control and monitoring are possible at later stages using blood images. The use of pictures for diagnosis is less costly in terms of the equipment and material needed to detect the disease in comparison with other methods in the field of Hematology. The aim of this study is to identify characteristics of white blood cells and to detect the type of lymphoblasts using morphology method for the diagnosis of acute lymphoblastic leukemia. A set of 32 blood smears are used in this project and decisions concerning subtype of acute lymphoblastic leukemia are conducted based on the fuzzy system proposed in the paper. A degree of accuracy of 93.75% reflects better high performance of the proposed classifier.
基于模糊分类器的血液涂片图像诊断急性淋巴细胞白血病
白血病是一种血液疾病,早期诊断对预防疾病的快速发展起着重要的作用。该研究的主要目的是如何使用模糊概念,以获得一个适当的分类器诊断这种疾病的显微图像的患者外周血涂片。血液影像分析通常能在早期诊断白血病,且费用较低。此外,在后期阶段可以使用血液图像进行疾病控制和监测。与血液学领域的其他方法相比,在检测疾病所需的设备和材料方面,使用图像进行诊断的成本较低。本研究的目的是利用形态学方法鉴定白细胞的特征和检测淋巴母细胞的类型,以诊断急性淋巴母细胞白血病。本项目使用了32份血涂片,并基于本文提出的模糊系统对急性淋巴细胞白血病亚型进行了决策。93.75%的准确率反映了该分类器的较好性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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