首页> 外文会议>Conference on Artificial Intelligence in Medicine(AIME 2007); 20070707-11; Amsterdam(NL) >Multi-resolution Image Parametrization in Stepwise Diagnostics of Coronary Artery Disease
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Multi-resolution Image Parametrization in Stepwise Diagnostics of Coronary Artery Disease

机译:多分辨率图像参数化在冠状动脉疾病的逐步诊断中

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Coronary artery disease is one of the world's most important causes of early mortality, so any improvements of diagnostic procedures are highly appreciated. In the clinical setting, coronary artery disease diagnostics is typically performed in a sequential manner. The four diagnostic levels consist of evaluation of (1) signs and symptoms of the disease and ECG (electrocardiogram) at rest, (2) ECG testing during a controlled exercise, (3) myocardial perfusion scintigraphy, and (4) finally coronary angiography (which is considered as the "gold standard" reference method). In our study we focus on improving diagnostic performance of the third diagnostic level (myocardial perfusion scintigraphy). This diagnostic level consists of series of medical images that are easily obtained and the imaging procedure represents only a minor threat to patients' health. In clinical practice, these images are manually described (parameterized) and subsequently evaluated by expert physicians. In our paper we present an innovative alternative to manual image evaluation - an automatic image parametrization on multiple resolutions, based on texture description with specialized association rules, and image evaluation with machine learning methods. Our results show that multi-resolution image parameterizations equals the physicians in terms of quality of image parameters. However, by using both manual and automatic image description parameters at the same time, diagnostic performance can be significantly improved with respect to the results of clinical practice.
机译:冠状动脉疾病是世界上早期死亡的最重要原因之一,因此对诊断方法的任何改进都受到高度赞赏。在临床环境中,通常以顺序方式执行冠状动脉疾病诊断。四个诊断级别包括以下方面的评估:(1)疾病的症状和体征以及休息时的心电图(心电图),(2)受控运动期间的心电图测试,(3)心肌灌注显像和(4)最后进行冠状动脉造影(被视为“黄金标准”参考方法)。在我们的研究中,我们专注于提高第三个诊断水平(心肌灌注显像)的诊断性能。此诊断级别包括一系列易于获取的医学图像,而成像过程仅代表对患者健康的较小威胁。在临床实践中,手动描述(参数化)这些图像,然后由专业医师对其进行评估。在我们的论文中,我们提出了一种创新的替代手动图像评估的方法-基于具有特殊关联规则的纹理描述以及基于机器学习方法的图像评估,可以在多种分辨率下对图像进行自动参数化。我们的结果表明,多分辨率图像参数化在图像参数质量方面等同于医师。但是,通过同时使用手动和自动图像描述参数,相对于临床实践的结果,诊断性能可以得到显着改善。

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