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Implementation of Backpropagation Neural Network and Blood Cells Imagery Extraction for Acute Leukemia Classification

机译:急性白血病分类的反向化神经网络和血细胞图像提取的实施

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This paper proposes an implementation of classification of Acute Leukemia using backpropagation neural network algorithm and blood cells imagery extraction. Leukemia is a cancer of blood cells, known as an abnormal white blood cells growth produced by the bone marrow. The exact cause of leukemia is still unknown. However, leukemias have been acknowledged to be grouped by how quickly the disease develops (acute leukemia and chronic leukemia) as well as by the type of blood cell that is affected (lymphocytes or myelocytes). This paper focuses on the acute leukemia, which can be categorized into Acute Lymphoblastic Leukemia (ALL) and Acute Myelogenous Leukemia (AML). These types of leukemia are possible to be diagnosed by counting the number of blood cells growth in the bone marrow through the microscopic analysis of blood cell imagery. However, it cost overpriced in terms of time, energy, and amount. In addition, manual counting may lead potential false of diagnoses. In this paper, backpropagation neural network algorithm is used to extract the characteristics of ALL and AML blood cells. Digital image processing is employed for identification type of leukemias. The experimental results argue that the proposed work achieves about 86.66% accuracy on average in classifying the leukemia acute types.
机译:本文提出了使用反向化神经网络算法和血细胞图像提取的急性白血病分类的实施。白血病是血细胞癌,称为骨髓产生的异常白细胞生长。白血病的确切原因仍然是未知的。然而,已经承认,疾病发展(急性白血病和慢性白血病)以及受影响的血细胞类型(淋巴细胞或骨髓细胞),已经承认了血清症。本文侧重于急性白血病,可分为急性淋巴细胞白血病(全部)和急性髓性白血病(AML)。通过血细胞图像的微观分析计算骨髓中的血细胞生长的数量,可以通过微观分析来诊断这些类型的白血病。然而,它在时间,能量和金额方面的价格过高。此外,手动计数可能导致潜在的诊断错误。在本文中,使用反向化神经网络算法用于提取所有和AML血细胞的特征。用于识别白血病的数字图像处理。实验结果认为,拟议的工作平均达到约86.66%的准确性,分类白血病急性类型。

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