论文标题

一种放射组学方法来分析高血压的心脏改变

A radiomics approach to analyze cardiac alterations in hypertension

论文作者

Cetin, Irem, Petersen, Steffen E., Napel, Sandy, Camara, Oscar, Ballester, Miguel Angel Gonzalez, Lekadir, Karim

论文摘要

高血压是一种医学疾病,是许多主要疾病的危险因素。例如,它可能会导致心脏结构和功能随着时间的流逝而改变,从而导致与心脏有关的发病率和死亡率。但是,在亚临床阶段,这些变化是微妙的,无法使用从临床心脏成像中计算出的常规心血管指数轻松捕获。在本文中,我们描述了一种用于识别与高血压相关的中间成像表型的放射组学方法。该方法结合了特征选择和机器学习技术,以确定与健康个体相比,高血压亚组的最微妙以及复杂的结构和组织变化。基于包括高血压和非高血压案例的无症状心脏样本的验证表明,所提出的放射组学模型能够检测强度和质地变化,远远超出了常规成像表型的能力,这表明其潜在的潜力可以改善对心血管健康和疾病高血压效应的理解。

Hypertension is a medical condition that is well-established as a risk factor for many major diseases. For example, it can cause alterations in the cardiac structure and function over time that can lead to heart related morbidity and mortality. However, at the subclinical stage, these changes are subtle and cannot be easily captured using conventional cardiovascular indices calculated from clinical cardiac imaging. In this paper, we describe a radiomics approach for identifying intermediate imaging phenotypes associated with hypertension. The method combines feature selection and machine learning techniques to identify the most subtle as well as complex structural and tissue changes in hypertensive subgroups as compared to healthy individuals. Validation based on a sample of asymptomatic hearts that include both hypertensive and non-hypertensive cases demonstrate that the proposed radiomics model is capable of detecting intensity and textural changes well beyond the capabilities of conventional imaging phenotypes, indicating its potential for improved understanding of the longitudinal effects of hypertension on cardiovascular health and disease.

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