使用鲁棒人工智能方法进行疾病估计

A. R. Shah, Isma Javed, Usman Shams, Muhammad Asif Naverd, M. Q. Mehmood
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引用次数: 1

摘要

人体血液检查是分析特定健康状况不可或缺的步骤,包括全血细胞计数。CBC强调白细胞(wbc)、红细胞(rbc)和血小板的计数,这对白血病、血小板减少症和贫血等严重疾病的分析具有隐含意义。传统的方法如人工计数和自动分析仪被广泛使用,这些方法单调、耗时且需要大量的医学专家。为了摆脱上述休闲技术,这里使用基于机器学习的对象检测和分类算法,你只需要看一次(YOLO)就可以计数血细胞。修改配置的YOLO已在自定义数据集上进行训练,以检测白细胞、红细胞和血小板。
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Disease estimation using robust AI methods
Human blood scrutinization is an indispensable step to analyze a particular health condition, comprise of a complete blood cell (CBC) count. CBC accentuates the counting of White blood cells (WBCs), red blood cells (RBCs), and Platelets which are implicitly significant for the analysis of severe maladies such as leukemia, thrombocytopenia, and anemia. Traditional approaches like manual counting and automated analyzer were extensively used, which is monotonous, time intensive, and entail a lot of medical experts. To get rid of aforesaid leisure techniques, here by using a machine learning-based object detection and classification algorithm you only look once (YOLO) to count the blood cells. YOLO with modified configuration has been trained on the customized dataset to detect the WBCs, RBCs, and platelets.
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