MTF and DQE enhancement using an apodized-aperture x-ray detector design

被引:4
作者
Nano, Tomi F. [1 ,2 ]
Escartin, Terenz [1 ,2 ]
Ismailova, Elina [1 ,2 ]
Karim, Karim S. [3 ]
Lindstrom, Jan [4 ]
Kim, Ho Kyung [5 ]
Cunningham, Ian A. [1 ,2 ]
机构
[1] Western Univ, Robarts Res Inst, London, ON N6A 5B7, Canada
[2] Western Univ, Dept Med Biophys, London, ON N6A 5B7, Canada
[3] Univ Waterloo, Dept Comp Engn, Waterloo, ON, Canada
[4] Karolinska Univ Hosp, Solna, Sweden
[5] Pusan Natl Univ, Sch Mech Engn, Busan, South Korea
基金
加拿大健康研究院;
关键词
apodized aperture pixel (AAP); cascaded-systems analysis (CSA); detective quantum efficiency (DQE); digital radiography; x-ray detectors; DIAGNOSTIC-IMAGING DETECTORS; AMORPHOUS SELENIUM; QUANTUM EFFICIENCY; INTERACTION LIMITS; NOISE; PERFORMANCE; SIGNAL; MAMMOGRAPHY; RADIOLOGY; SYSTEMS;
D O I
10.1002/mp.12420
中图分类号
R8 [特种医学]; R445 [影像诊断学];
学科分类号
1002 ; 100207 ; 1009 ;
摘要
Purpose: Acquisition of high-quality x-ray images using low patient exposures requires detectors with high detective quantum efficiency (DQE). We describe a novel apodized-aperture pixel (AAP) design that increases high-frequency modulation transfer function (MTF) and DQE values. The AAP design makes a separation of physical sensor elements from image pixels by using very small sensor elements (e.g., 0.010-0.025 mm) to synthesize desired larger image pixels (e.g., 0.1-0.2 mm). Methods: A cascaded systems model of signal and noise propagation is developed to describe the benefits of the AAP approach in terms of the MTF, Wiener noise power spectrum (NPS), and DQE. The theoretical model was validated experimentally using a CMOS/CsI detector with 0.05 mm sensor elements to synthesize 0.20 mm image pixels and a clinical Se detector with 0.07 mm sensor elements to synthesize 0.28 mm pixels. A Monte Carlo study and x-ray images of a star-pattern and rat leg are used to visually compare AAP images. Results: When used with a high-resolution converter layer and sensor elements one quarter the size of image pixels, the MTF is increased by 53% and the DQE by a factor of 2.39 at the image sampling cut-off frequency. Both simulated and demonstration images show improved detectability of high-frequency content and removal of aliasing artifacts. Evidence of Gibbs ringing is sometimes seen near high-contrast edges. Conclusions: It is shown that the AAP approach preserves the MTF of the small sensor elements and attenuates frequencies above the image sampling cut-off frequency. This has the double benefit of improving the MTF while reducing both signal and noise aliasing, resulting in an increase of the DQE at high spatial frequencies. For optimal implementation, the converter layer must have very high spatial resolution and the detector must have low readout noise. (C) 2017 American Association of Physicists in Medicine
引用
收藏
页码:4525 / 4535
页数:11
相关论文
共 28 条
  • [1] Improving amorphous selenium photodetector performance using an organic semiconductor
    Abbaszadeh, Shiva
    Allec, Nicholas
    Karim, Karim S.
    [J]. MATERIALS AND APPLICATIONS FOR SENSORS AND TRANSDUCERS II, 2013, 543 : 451 - 454
  • [2] Barrett H.H., 1996, Radiological imaging: the theory of image formation, detection, and processing
  • [3] Barrett H.H., 2004, Foundations of Image Science, P651
  • [4] Risk of cancer from diagnostic X-rays:: estimates for the UK and 14 other countries
    Berrington de González, A
    Darby, S
    [J]. LANCET, 2004, 363 (9406) : 345 - 351
  • [5] Digital Compared with Screen-Film Mammography: Performance Measures in Concurrent Cohorts within an Organized Breast Screening Program
    Chiarelli, Anna M.
    Edwards, Sarah A.
    Prummel, Maegan V.
    Muradali, Derek
    Majpruz, Vicky
    Done, Susan J.
    Brown, Patrick
    Shumak, Rene S.
    Yaffe, Martin J.
    [J]. RADIOLOGY, 2013, 268 (03) : 684 - 693
  • [6] Cunningham I., 2002, Handbook of Medical Imaging, V1
  • [7] A SPATIAL-FREQUENCY DEPENDENT QUANTUM ACCOUNTING DIAGRAM AND DETECTIVE QUANTUM EFFICIENCY MODEL OF SIGNAL AND NOISE-PROPAGATION IN CASCADED IMAGING-SYSTEMS
    CUNNINGHAM, IA
    WESTMORE, MS
    FENSTER, A
    [J]. MEDICAL PHYSICS, 1994, 21 (03) : 417 - 427
  • [8] Cascaded models and the DQE of flat-panel imagers: Noise aliasing, secondary quantum noise and reabsorption
    Cunningham, IA
    Yao, J
    Subotic, V
    [J]. MEDICAL IMAGING 2002: PHYSICS OF MEDICAL IMAGING, 2002, 4682 : 61 - 72
  • [9] Degradation of the detective quantum efficiency due to a non-unity detector fill factor
    Cunningham, IA
    [J]. PHYSICS OF MEDICAL IMAGING - MEDICAL IMAGING 1997, 1997, 3032 : 22 - 31
  • [10] Signal-to-noise optimization of medical imaging systems
    Cunningham, IA
    Shaw, R
    [J]. JOURNAL OF THE OPTICAL SOCIETY OF AMERICA A-OPTICS IMAGE SCIENCE AND VISION, 1999, 16 (03): : 621 - 632