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首页> 外文期刊>Open Journal of Clinical Diagnostics >Detection of plasmodium parasites from images of thin blood smears
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Detection of plasmodium parasites from images of thin blood smears

机译:从薄血涂片图像中检测疟原虫的寄生虫

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Malaria is the leading cause of morbidity and mortality in tropical and subtropical countries. Conventional microscopy is the Gold standard in the diagnosis of the disease. However, it is prone to some shortcomings which include time consumption and difficultness in reproducing results. Alternative diagnosis techniques which yield superior results are quite expensive and hence inaccessible to developing countries where the disease is prevalent. Thus in this work, an accurate, speedy and affordable system of malaria detection using stained thin blood smear images was developed. The method uses Artificial Neural Network (ANN) to test for the presence of plasmodium parasites in thin blood smear images. Images of infected and non-infected erythrocytes were acquired, pre-processed, relevant features extracted from them and eventually diagnosis was made based on the features extracted from the images. Diagnosis entailed detection of plasmodium parasites. Classification accuracy of 95.0% in detection of infected erythrocyte was achieved with respect to results obtained by expert microscopists. The study revealed that artificial neural network (ANN) classifiers trained with colour features of infected stained thin blood smear images are suitable for detection. It was further shown that ANN classifiers can be trained to perform image segmentation.
机译:疟疾是热带和亚热带国家发病和死亡的主要原因。常规显微镜检查是诊断该疾病的金标准。然而,它容易出现一些缺点,包括时间消耗和再现结果的困难。产生卓越结果的替代诊断技术非常昂贵,因此对于该病盛行的发展中国家而言是无法获得的。因此,在这项工作中,开发了一种使用染色的薄血涂片图像的准确,快速且负担得起的疟疾检测系统。该方法使用人工神经网络(ANN)测试稀薄血液涂片图像中是否存在疟原虫。采集感染和未感染的红细胞图像,对其进行预处理,从中提取相关特征,并根据从图像中提取的特征进行最终诊断。诊断需要检测疟原虫的寄生虫。相对于专家显微镜专家获得的结果,检测到的感染红细胞的分类精度达到95.0%。该研究表明,经过人工神经网络(ANN)分类器训练的受感染染色的薄血涂片图像的颜色特征适合于检测。进一步表明,可以训练ANN分类器来执行图像分割。

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