X-ray scatter characterization in dedicated breast CT with bowtie filters

被引:3
|
作者
Kontson, Kimberly [1 ]
Jennings, Robert J. [1 ]
机构
[1] US FDA, Ctr Devices & Radiol Hlth, Silver Spring, MD 20993 USA
关键词
bowtie filter; breast CT; scatter-to-primary ratio; IMAGE QUALITY; RADIATION; DESIGN;
D O I
10.1117/12.2043051
中图分类号
O43 [光学];
学科分类号
070207 ; 0803 ;
摘要
The scatter contamination of projection images in cone-beam computed tomography (CT) degrades image quality. The use of bowtie filters in dedicated breast CT can decrease this scatter contribution. Three bowtie filter designs that compensate for one or more aspects of the beam-modifying effects due to the differences in path length in a projection have been studied. The first produces the same beam-hardening effect as breast tissue with a single-material design. The second produces the same beam quality and intensity at the detector with a two-material design and the third eliminates the beam-hardening effect by adjusting the bowtie filter thickness such that the same effective attenuation is produced at the detector. We have selected aluminum, boron carbide/beryllium oxide, and PM MA as the materials for the previously described designs, respectively. These designs have been investigated in terms of their ability to reduce the scatter contamination in projection images acquired in a dedicated breast CT geometry. The magnitude of the scatter was measured as the scatter-to-primary ratio using experimental and Monte Carlo techniques. The distribution of the scatter was also measured at different locations in the scatter image to produce scatter distribution maps for all three bowtie filter designs. The results of this study will be useful in designing scatter correction methods and understanding the benefits of bowtie filters in dedicated breast CT.
引用
收藏
页数:12
相关论文
共 50 条
  • [31] An analysis of scatter characteristics in x-ray CT spectral correction
    Zhang, Tao
    Chen, Zhiqiang
    Zhou, Hao
    Bennett, N. Robert
    Wang, Adam S.
    Gao, Hewei
    PHYSICS IN MEDICINE AND BIOLOGY, 2021, 66 (07):
  • [32] X-Ray Compton Scatter Imaging on Volumetric CT Systems
    Niu, T.
    Zhu, L.
    MEDICAL PHYSICS, 2011, 38 (06)
  • [33] Characterization of a prototype, tabletop X-ray CT breast imaging system
    O'Connor, J. Michael
    Glick, Stephen J.
    Gong, Xing
    Didier, Clay
    Mah'd, Mufeed
    MEDICAL IMAGING 2007: PHYSICS OF MEDICAL IMAGING, PTS 1-3, 2007, 6510
  • [34] Virtual scatter modulation for X-ray CT scatter correction using primary modulator
    Gao, Hewei
    Zhu, Lei
    Fahrig, Rebecca
    JOURNAL OF X-RAY SCIENCE AND TECHNOLOGY, 2017, 25 (06) : 869 - 885
  • [35] X-ray scatter signatures for normal and neoplastic breast tissues
    Kidane, G
    Speller, RD
    Royle, GJ
    Hanby, AM
    PHYSICS IN MEDICINE AND BIOLOGY, 1999, 44 (07): : 1791 - 1802
  • [36] A model for breast tissue based on x-ray scatter data
    Pasricha, Prarthana
    LeClair, Robert
    MEDICAL PHYSICS, 2021, 48 (08) : 4668 - 4668
  • [37] The Influence of Bowtie Filtration on X-ray Photons Distribution in Cone Beam CT
    Jiang, Shanghai
    Feng, Peng
    Wei, Biao
    He, Peng
    Deng, Luzhen
    Zhang, Wei
    AOPC 2015: ADVANCED DISPLAY TECHNOLOGY; AND MICRO/NANO OPTICAL IMAGING TECHNOLOGIES AND APPLICATIONS, 2015, 9672
  • [38] X-ray scatter correction algorithm for cone beam CT imaging
    Ning, R
    Tang, XY
    Conover, D
    MEDICAL PHYSICS, 2004, 31 (05) : 1195 - 1202
  • [39] X-ray scatter suppression algorithm for cone beam volume CT
    Ning, RL
    Tang, XY
    Conover, DL
    MEDICAL IMAGING 2002: PHYSICS OF MEDICAL IMAGING, 2002, 4682 : 774 - 781
  • [40] Practical x-ray scatter measurements for volume CT detector design
    Fox, TR
    Nisius, DT
    Aradate, H
    Saito, Y
    MEDICAL IMAGING 2001: PHYSICS OF MEDICAL IMAGING, 2001, 4320 : 808 - 814