Precise real-time correction of Anger camera deadtime losses

被引:4
|
作者
Woldeselassie, T [1 ]
机构
[1] Univ Addis Ababa, Fac Technol, Addis Ababa, Ethiopia
[2] Univ Addis Ababa, Fac Med, Addis Ababa, Ethiopia
关键词
source distribution; window fraction; energy spectrum; ROI fraction; deadtime losses;
D O I
10.1118/1.1485996
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
An earlier paper dealt with modeling of the camera in terms of the resolving times, tau(0) and T, of the paralyzable detector and nonparalyzable computer system, respectively, for the case of a full energy window. A second paper presented a decaying source method for the accurate real-time measurement of these resolving times. The present paper first shows that the detector system can be treated as a single device with a resolving time tau(0) dependent on source distribution. It then discusses camera operation with an energy window, window fraction being f(w) = R-p/R-d less than or equal to 1, where R-d and R-p are the detector and pulse-height-analyzer (PHA) outputs, respectively. The detector resolving time is shown to vary with window fraction according to tau(0p) = tau(0p)/f(w), while T is unaffected, so that operation may be paralyzable or nonparalyzable depending on window setting and the ratio k(T) = T/tau(0). Regions of interest are described in terms of the ROI fraction, f(r) = R-r/R less than or equal to 1, and resolving time, tau(0r) = tau(0p)/f(r), where R and R-r are the recorded count rates for the field-of-view and the region-of-interest, respectively. As tau(0p) and tau(0r) are expected to vary with input rate, it is shown that these can be measured in real-time using the decaying source method. It is then shown that camera operation both with f(w) less than or equal to 1 and f(r) less than or equal to 1 can be described by the simple paralyzable equation r = ne(-n), where n = N(w)tau(0p) = N(r)tau(0r) and r = R(p)tau(0p) = R(r)tau(0r), N-w, and N-r being the input rates within the energy window and the region of interest, respectively. An analytical solution to the paralyzable equation is then presented, which enables the input rates N-w = n/tau(0p) and N-r= n/tau(0r) to be obtained correct to better than 0.52% all the way up to the peak response point of the camera. (C) 2002 American Association of Physicists in Medicine.
引用
收藏
页码:1599 / 1610
页数:12
相关论文
共 50 条
  • [41] Real-time correction of chance coincidence losses in high-rate Compton suppression spectrometry
    Westphal, GP
    NUCLEAR INSTRUMENTS & METHODS IN PHYSICS RESEARCH SECTION A-ACCELERATORS SPECTROMETERS DETECTORS AND ASSOCIATED EQUIPMENT, 1998, 416 (2-3): : 536 - 538
  • [42] Stereo Camera based Real-Time Gaze Correction Method by Matching and Blending Eye Regions
    Cui, Junjian
    Ra, Moonsoo
    Kim, Deuk-Hwa
    Kim, Whoi-Yul
    2014 International Conference on Electronics, Information and Communications (ICEIC), 2014,
  • [43] A pipelined architecture for real-time correction of barrel distortion in wide-angle camera images
    Ngo, HT
    Asari, VK
    IEEE TRANSACTIONS ON CIRCUITS AND SYSTEMS FOR VIDEO TECHNOLOGY, 2005, 15 (03) : 436 - 444
  • [44] Fusion of stereo-camera and PMD-camera data for real-time suited precise 3D environment reconstruction
    Kuhnert, Klaus-Dieter
    Stommel, Martin
    2006 IEEE/RSJ INTERNATIONAL CONFERENCE ON INTELLIGENT ROBOTS AND SYSTEMS, VOLS 1-12, 2006, : 4780 - +
  • [45] OPTICAL WAVEFRONT CORRECTION IN REAL-TIME
    HARDY, JW
    JOURNAL OF THE OPTICAL SOCIETY OF AMERICA, 1975, 65 (10) : 1212 - 1212
  • [46] REAL-TIME CORRECTION OF TELESCOPE SEEING
    DICKE, RH
    JOURNAL OF THE OPTICAL SOCIETY OF AMERICA, 1975, 65 (10) : 1206 - 1206
  • [47] Correction of deformed images in real-time
    Van der Jeught, Sam
    Buytaert, Jan A. N.
    Dirckx, Joris J. J.
    22ND CONGRESS OF THE INTERNATIONAL COMMISSION FOR OPTICS: LIGHT FOR THE DEVELOPMENT OF THE WORLD, 2011, 8011
  • [48] COMPUTERS CORRECTION OF FIELD NONUNIFORMITY OF ANGER CAMERA
    ULLMANN, V
    HUSAK, V
    DUBROKA, L
    RADIOBIOLOGIA-RADIOTHERAPIA, 1979, 20 (06) : 791 - 801
  • [49] Network based real-time precise point positioning
    Li, Haojun
    Chen, Junping
    Wang, Jiexian
    Hu, Congwei
    Liu, Zhiqiang
    ADVANCES IN SPACE RESEARCH, 2010, 46 (09) : 1218 - 1224