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基于机器学习的小儿急性白血病诊断与分类的集成模型设计。

Design of an integrated model for diagnosis and classification of pediatric acute leukemia using machine learning.

机构信息

Faculty of Industrial Engineering, Urmia University of Technology, Urmia, Iran.

School of Industrial Engineering, College of Engineering, University of Tehran, Tehran, Iran.

出版信息

Proc Inst Mech Eng H. 2020 Oct;234(10):1051-1069. doi: 10.1177/0954411920938567. Epub 2020 Jul 7.

Abstract

Applying artificial intelligence techniques for diagnosing diseases in hospitals often provides advanced medical services to patients such as the diagnosis of leukemia. On the other hand, surgery and bone marrow sampling, especially in the diagnosis of childhood leukemia, are even more complex and difficult, resulting in increased human error and procedure time decreased patient satisfaction and increased costs. This study investigates the use of neuro-fuzzy and group method of data handling, for the diagnosis of acute leukemia in children based on the complete blood count test. Furthermore, a principal component analysis is applied to increase the accuracy of the diagnosis. The results show that distinguishing between patient and non-patient individuals can easily be done with adaptive neuro-fuzzy inference system, whereas for classifying between the types of diseases themselves, more pre-processing operations such as reduction of features may be needed. The proposed approach may help to distinguish between two types of leukemia including acute lymphoblastic leukemia and acute myeloid leukemia. Based on the sensitivity of the diagnosis, experts can use the proposed algorithm to help identify the disease earlier and lessen the cost.

摘要

在医院中应用人工智能技术诊断疾病,通常可以为患者提供先进的医疗服务,如白血病的诊断。另一方面,手术和骨髓采样,尤其是在儿童白血病的诊断中,更加复杂和困难,导致人为错误增加、程序时间延长、患者满意度降低、成本增加。本研究基于全血细胞计数测试,使用神经模糊和数据处理的群组方法,对儿童急性白血病进行诊断。此外,还应用主成分分析提高诊断的准确性。结果表明,自适应神经模糊推理系统可以轻松区分患者和非患者个体,而对于疾病类型的分类,可能需要更多的预处理操作,如特征减少。该方法有助于区分急性淋巴细胞白血病和急性髓细胞白血病两种白血病。基于诊断的敏感性,专家可以使用提出的算法帮助更早地识别疾病并降低成本。

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