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An automatic device for detection and classification of malaria parasite species in thick blood film

机译:自动检测厚血膜中疟原虫种类的方法

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摘要

BackgroundCurrent malaria diagnosis relies primarily on microscopic examination of Giemsa-stained thick and thin blood films. This method requires vigorously trained technicians to efficiently detect and classify the malaria parasite species such as Plasmodium falciparum (Pf) and Plasmodium vivax (Pv) for an appropriate drug administration. However, accurate classification of parasite species is difficult to achieve because of inherent technical limitations and human inconsistency. To improve performance of malaria parasite classification, many researchers have proposed automated malaria detection devices using digital image analysis. These image processing tools, however, focus on detection of parasites on thin blood films, which may not detect the existence of parasites due to the parasite scarcity on the thin blood film. The problem is aggravated with low parasitemia condition. Automated detection and classification of parasites on thick blood films, which contain more numbers of parasite per detection area, would address the previous limitation.
机译:背景技术目前的疟疾诊断主要依靠显微镜检查吉姆萨染色的厚薄血膜。此方法需要经过严格培训的技术人员,才能有效地检测和分类疟原虫,例如恶性疟原虫(Pf)和间日疟原虫(Pv),以进行适当的药物管理。但是,由于固有的技术局限性和人为的不一致,很难实现对寄生虫物种的准确分类。为了提高疟原虫分类的性能,许多研究人员提出了使用数字图像分析的自动疟疾检测设备。然而,这些图像处理工具专注于检测薄血膜上的寄生虫,由于薄血膜上的寄生虫稀缺,其可能无法检测到寄生虫的存在。低寄生虫病使问题更加严重。自动检测和分类厚血膜上的寄生虫(每个检测区域包含更多数量的寄生虫)将解决先前的局限性。

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