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Coronavirus (COVID-19) detection from chest radiology images using convolutional neural networks

机译:冠状病毒(Covid-19)使用卷积神经网络从胸部放射学图像检测

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Coronavirus disease (Covid-19) has been spreading all over the world and its diagnosis is attracting more research every moment. It is need of the hour to develop automated methods, which could detect this disease at its early stage, in a non-invasive way and within lesser time. Currently, medical specialists are analyzing Computed Tomography (CT), X-Ray, and Ultrasound (US) images or conducting Polymerase Chain Reaction (PCR) for its confirmation on manual basis. In Pakistan, CT scanners are available in most hospitals at district level, while X-Ray machines are available in all tehsil (large urban towns) level hospitals. Being widely used imaging modalities to analyze chest related diseases, produce large volume of medical data each moment clinical environments. Since automatic, time efficient and reliable methods for Covid-19 detection are required as alternate methods, therefore an automatic method of Covid-19 detection using Convolutional Neural Networks (CNN) has been proposed. Three publically available and a locally developed dataset, obtained from Department of Radiology (Diagnostics), Bahawal Victoria Hospital, Bahawalpur (BVHB), Pakistan have been used. The proposed method achieved on average accuracy (96.68 %), specificity (95.65 %), and sensitivity (96.24 %). Proposed model is trained on a large dataset and is being used at the Radiology Department, (BVHB), Pakistan.
机译:冠状病毒疾病(Covid-19)一直在遍布世界各地,其诊断每时每刻都在吸引更多的研究。需要一个小时来开发自动化方法,这些方法可以以非侵入性的方式在其早期阶段检测这种疾病,并且在较小的时间内。目前,医学专家正在分析计算机断层扫描(CT),X射线和超声(US)图像或进行聚合酶链反应(PCR),以便在手动基础上确认。在巴基斯坦,CT扫描仪在地区级别的大多数医院提供,而X射线机在所有Tehsil(大城市城镇)一级医院提供。被广泛使用的成像方式来分析胸部相关疾病,每时每刻都会产生大量的医疗数据临床环境。由于自动化的Covid-19检测方法是作为替代方法所必需的,因此已经提出了使用卷积神经网络(CNN)的Covid-19检测的自动方法。已经使用了从出版物(诊断),巴拉威斯(BahaWalpur),巴基斯坦,巴基斯坦,巴基安普尔(Bvhb),巴基安尔州,巴基斯坦的三个公开可用和本地开发的数据集。所提出的方法平均精度(96.68%),特异性(95.65%)和敏感性(96.24%)。提出的模型在大型数据集上培训,并正在巴基斯坦放射学部门(BVHB)。

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