Blood microscopic image segmentation using rough sets

Subrajeet Mohapatra, D. Patra, Kundan Kumar
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引用次数: 38

Abstract

Hematological disorders are mostly identified based on characterization of blood parameters i.e. erythrocytes, leukocytes and platelets. Microscopic examination of leukocytes in blood slides is the most frequent laboratory investigation performed for malignancy detection. Hematological examination of blood is an indispensable technique still today and solely depends on human visual interpretation. Such examination are subjected to inter and intra-observer variations, slowness, tiredness and operator experience. Accurate and authentic diagnosis of hematological neoplasia can help in the planning of suitable surgery and chemotherapy, and generally improve the quality of patient care. Microscopy cell image analysis is a tool which facilitates conventional blood examination for disease detection using quantitative microscopy. Thus microscopic image analysis serves as an impressive diagnostic tool for hematological disease (leukemia, malaria, psoriasis, AIDS etc) recognition. The present paper aims at leukocyte or white blood cell (WBC) segmentation which can assist in acute leukemia detection. A rough set based clustering approach is followed for color based segmentation of WBC. The segmented nucleus and cytoplasm can be used for feature extraction which can lead to classification of a leukocyte into mature lymphocyte or lymphoblast.
基于粗糙集的血液显微图像分割
血液学疾病大多是根据血液参数的特征来确定的,即红细胞、白细胞和血小板。血液载玻片中白细胞的显微镜检查是恶性肿瘤检测中最常用的实验室检查方法。血液的血液学检查仍然是一项不可或缺的技术,完全依赖于人类的视觉解释。这种检查受到观察者之间和内部变化、缓慢、疲劳和操作员经验的影响。准确、真实的血液学肿瘤诊断有助于制定合适的手术和化疗方案,并普遍提高患者的护理质量。显微镜细胞图像分析是一种工具,方便常规血液检查的疾病检测使用定量显微镜。因此,显微图像分析是血液系统疾病(白血病、疟疾、牛皮癣、艾滋病等)识别的一种令人印象深刻的诊断工具。本文的目的是白细胞或白细胞(WBC)的分割,以协助急性白血病的检测。采用基于粗糙集的聚类方法对WBC进行颜色分割。分节的细胞核和细胞质可用于特征提取,可将白细胞分类为成熟淋巴细胞或淋巴母细胞。
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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