Automated determination of arterial input function in DCE-MR images of the kidney

被引:0
作者
Klepaczko, Artur [1 ]
Muszelska, Martyna [1 ]
Eikefjord, Eli [2 ]
Rorvik, Jarle [3 ]
Lundervold, Arvid [4 ]
机构
[1] Lodz Univ Technol, Inst Elect, Lodz, Poland
[2] Haukeland Hosp, Dept Radiol, Bergen, Norway
[3] Univ Bergen, Dept Clin Med, Bergen, Norway
[4] Univ Bergen, Dept Biomed, Bergen, Norway
来源
2018 SIGNAL PROCESSING: ALGORITHMS, ARCHITECTURES, ARRANGEMENTS, AND APPLICATIONS (SPA) | 2018年
关键词
perfusion-weighted imaging; arterial input function; pharmacokinetic modeling; GLOMERULAR-FILTRATION; 2-COMPARTMENT MODEL; PERFUSION; SEGMENTATION; PARAMETERS;
D O I
暂无
中图分类号
TP301 [理论、方法];
学科分类号
081202 ;
摘要
This paper concerns the problem of estimating renal perfusion based on the Dynamic Contrast Enhanced MRI. Quantification of perfusion parameters is possible by the means of pharmacokinetic modeling. Several mathematical formulations of PK models have been proposed. In any case, it is important to determine the so-called arterial input function, i.e. the time-course of the contrast agent bolus in a main feeding artery. In case of the kidney it is the descending aorta. Usually, determination of AIF is performed manually. We propose the automatic procedure to determine AIF, thus reducing the involvement of a human observer in the image processing pipeline. Our proposed method uses a combination of image processing and machine learning algorithms firstly to identify all voxels potentially belonging to the descending aorta and secondly to select those voxels which are free from the inflow artifact. The tests of our method performed for 10 DCE-MRI datasets show its effectiveness in terms of the resulting perfusion parameters measurements.
引用
收藏
页码:280 / 285
页数:6
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