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Correlation between Automatic Detection of Malaria on Thin Film and Experts' Parasitaemia Scores

机译:薄膜疟疾自动检测与专家寄生虫分数的相关性

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An algorithm was developed to diagnose the presence of malaria and to estimate the depth of infection by automatically counting individual normal and infected erythrocytes in images of thin blood smears. During the training stage, the parameters of the algorithm were optimized to maximize correlation with estimates of parasitaemia from expert human observers. The correlation was tested on a set of 1590 images from seven thin film blood smears. The correlation between the results from the algorithm and expert human readers was r = 0.836. Results indicate that reliable estimates of parasitaemia may be achieved by computational image analysis methods applied to images of thin film smears. Meanwhile, compared to biological experiments, the algorithm fitted well the three high parasitaemia slides and a midlevel parasitaemia slide, and overestimated the three low parasitaemia slides. To improve the parasitaemia estimation, the sources of the overestimation were identified. Emphasis is laid on the importance of further research in order to identify parasites independently of their erythrocyte hosts.
机译:开发了一种算法以诊断疟疾的存在,并通过自动计算薄血涂片图像中的个体正常和受感染的红细胞来估计感染深度。在训练阶段,优化算法的参数以最大化与来自专家观察者的寄生虫估计的相关性。从七个薄膜血液涂抹的一组1590图像上测试了相关性。算法和专家读者结果之间的相关性是r = 0.836。结果表明,通过应用于薄膜涂片图像的计算图像分析方法,可以实现副血症的可靠估计。同时,与生物实验相比,该算法井井有素,三个高副血症载体和牛仔血症血症幻灯片,并高估了三个低副血症的幻灯片。为了改善寄生虫估计,确定了高估的来源。重点是进一步研究的重要性,以便独立于其红细胞宿主识别寄生虫。

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