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Non-invasive detection of coronary artery disease in high-risk patients based on the stenosis prediction of separate coronary arteries

机译:基于单独冠状动脉狭窄预测的高危患者冠状动脉疾病的非侵袭性检测

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摘要

Background and objective: Cardiovascular diseases are an extremely widespread sickness and account for 17 million deaths in the world per annum. Coronary artery disease (CAD) is one of such diseases with an annual mortality rate of about 7 million. Thus, early diagnosis of CAD is of vital importance. Angiography is currently the modality of choice for the detection of CAD. However, its complications and costs have prompted researchers to seek alternative methods via machine learning algorithms.
机译:背景和目的:心血管疾病是一个极其普遍的疾病,每年都有1700万人死亡。 冠状动脉疾病(CAD)是此类疾病之一,年死亡率约为700万。 因此,CAD的早期诊断至关重要。 血管造影目前是检测CAD的选择的模式。 然而,它的并发症和成本促使研究人员通过机器学习算法寻求替代方法。

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