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Early detection of coronary artery blockage using image processing: segmentation, quantification, identification of degree of blockage and risk factors of heart attack

机译:使用图像处理及早发现冠状动脉阻塞:分割,量化,确定阻塞程度和心脏病发作的危险因素

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Coronary artery blockage is a vital issue of occurring heart attack. There are several techniques to diagnose coronary arteryblockage as well as other type heart diseases. In this paper, we discuss about computerized full automated model for thedetection of coronary artery blockage using image processing techniques so that the system does not have to rely onhuman’s inspection. Using efficient image processing technique and AI algorithms, the system allows a faster and reliabledetection of the narrowing area of the wall of coronary arteries due to the condensation of different artery blocking agents.The system requires a 64-slice/128-slice CTA image as input. After the acquisition of the desired input image, it goesthrough several steps to determine the region of interest. This research proposes a two stage approach that includes thepre-processing stage and decision stage. The pre-processing stage involves common image processing strategies while thedecision stage involves the extraction and calculation of features to finally determine the intended result using AIalgorithms. This type of model effectively enables early detection of coronary artery blockage through segmentation,quantification, identification of degree of blockage and risk factors of heart attack.
机译:冠状动脉阻塞是发生心脏病的重要问题。有几种诊断冠状动脉的技术 阻塞以及其他类型的心脏病。在本文中,我们将讨论用于 使用图像处理技术检测冠状动脉阻塞,因此系统不必依赖 人工检查使用高效的图像处理技术和AI算法,该系统可提供更快,更可靠的结果 检测由于不同的动脉阻塞剂的凝结而导致的冠状动脉壁狭窄区域的检测。 系统需要64切片/ 128切片CTA图像作为输入。获取所需的输入图像后, 通过几个步骤来确定感兴趣的区域。这项研究提出了一种两阶段的方法,其中包括 预处理阶段和决策阶段。预处理阶段涉及常见的图像处理策略,而 决策阶段涉及特征的提取和计算,以最终使用AI确定预期结果 算法。这种类型的模型可以有效地通过分割来及早发现冠状动脉阻塞, 量化,鉴定阻塞程度和心脏病发作的危险因素。

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