Deep Scatter Estimation (DSE): Accurate Real-Time Scatter Estimation for X-Ray CT Using a Deep Convolutional Neural Network

被引:94
作者
Maier, Joscha [1 ]
Sawall, Stefan [1 ]
Knaup, Michael [1 ]
Kachelriess, Marc [1 ]
机构
[1] German Canc Res Ctr, Neuenheimer Feld 280, D-69120 Heidelberg, Germany
关键词
X-ray scatter correction; Artifact reduction; CT; Cone-beam CT (CBCT); Deep neural network; Convolutional neural network; CONE-BEAM CT; PRIMARY MODULATION; GENERAL FRAMEWORK; ALGORITHM;
D O I
10.1007/s10921-018-0507-z
中图分类号
TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
X-ray scatter is a major cause of image quality degradation in dimensional CT. Especially, in case of highly attenuating components scatter-to-primary ratios may easily be higher than 1. The corresponding artifacts which appear as cupping or dark streaks in the CT reconstruction may impair a metrological assessment. Therefore, an appropriate scatter correction is crucial. Thereby, the gold standard is to predict the scatter distribution using a Monte Carlo (MC) code and subtract the corresponding scatter estimate from the measured raw data. MC, however, is too slow to be used routinely. To correct for scatter in real-time, we developed the deep scatter estimation (DSE). It uses a deep convolutional neural network which is trained to reproduce the output of MC simulations using only the acquired projection data as input. Once trained, DSE can be applied in real-time. The present study demonstrates the potential of the proposed approach using simulations and measurements. In both cases the DSE yields highly accurate scatter estimates that differ by < 3% from our MC scatter predictions. Further, DSE clearly outperforms kernel-based scatter estimation techniques and hybrid approaches, as they are in use today.
引用
收藏
页数:9
相关论文
共 38 条
[1]   Hybrid scatter correction for CT imaging [J].
Baer, Matthias ;
Kachelriess, Marc .
PHYSICS IN MEDICINE AND BIOLOGY, 2012, 57 (21) :6849-6867
[2]   Scattering correction using continuously thickness-adapted kernels [J].
Bhatia, Navnina ;
Tisseur, David ;
Buyens, Fanny ;
Letang, Jean Michel .
NDT & E INTERNATIONAL, 2016, 78 :52-60
[3]   Scatter correction using a primary modulator on a clinical angiography C-arm CT system [J].
Bier, Bastian ;
Berger, Martin ;
Maier, Andreas ;
Kachelriess, Marc ;
Ritschl, Ludwig ;
Mueller, Kerstin ;
Choi, Jang-Hwan ;
Fahrig, Rebecca .
MEDICAL PHYSICS, 2017, 44 (09) :E125-E137
[4]  
Cullen D E., 1997, Tech. Rep
[5]   PRACTICAL CONE-BEAM ALGORITHM [J].
FELDKAMP, LA ;
DAVIS, LC ;
KRESS, JW .
JOURNAL OF THE OPTICAL SOCIETY OF AMERICA A-OPTICS IMAGE SCIENCE AND VISION, 1984, 1 (06) :612-619
[6]   COMPTON SCATTER EFFECTS IN CT RECONSTRUCTIONS [J].
GLOVER, GH .
MEDICAL PHYSICS, 1982, 9 (06) :860-867
[7]   Empirical Cupping Correction for CT Scanners with Primary Modulation (ECCP) [J].
Grimmer, Rainer ;
Fahrig, Rebecca ;
Hinshaw, Waldo ;
Gao, Hewei ;
Kachelriess, Marc .
MEDICAL PHYSICS, 2012, 39 (02) :825-831
[8]   Estimating scatter in cone beam CT with striped ratio grids: A preliminary investigation [J].
Hsieh, Scott .
MEDICAL PHYSICS, 2016, 43 (09) :5084-5092
[9]   THE EFFECTS OF SCATTER IN X-RAY COMPUTED-TOMOGRAPHY [J].
JOSEPH, PM ;
SPITAL, RD .
MEDICAL PHYSICS, 1982, 9 (04) :464-472
[10]   X-ray spectrum estimation for accurate attenuation simulation [J].
Leinweber, Carsten ;
Maier, Joscha ;
Kachelriess, Marc .
MEDICAL PHYSICS, 2017, 44 (12) :6183-6194