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Classification of In Vitro Blood Stages of Plasmodium Falciparum Based on Fuzzy Inference System

机译:基于模糊推理系统的恶性疟原虫体外血液分类

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This paper proposes the automated texture based classification of Malaria parasites in Giemsa-stained thin blood film images based on fuzzy inference system (FIS). The proposed expert and knowledge based framework includes the segmentation, feature extraction and classification of erythrocytes. First-order statistical analysis includes mean, standard deviation, skewness and kurtosis have been proposed as input parameters of FIS. The effectiveness of classifier is compared to find appropriate parame- ters for classification of normal cells and infected cells, both ring and trophozoite stages. The proposed method can provide 96.28% accuracy rate for binary classification of normal and infected cells. The results also yield 97.55% accuracy for ring stage classification, and 98.54% accuracy for trophozoite stage classification.
机译:本文提出了基于模糊推理系统(FIS)的吉姆萨染色薄血膜图像中疟原虫的基于纹理的自动分类。所提出的基于专家和知识的框架包括红细胞的分割,特征提取和分类。一阶统计分析包括平均值,标准差,偏度和峰度已被提议作为FIS的输入参数。比较分类器的有效性,以找到合适的参数来分类正常细胞和受感染细胞,包括环状和滋养体阶段。该方法可为正常细胞和感染细胞的二分类提供96.28%的准确率。结果对于环阶段分类也产生了97.55%的准确度,对于滋养体阶段分类也产生了98.54%的准确度。

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