Evaluation of image noise in respiratory gated PET

被引:6
作者
Detorie, Nicole C. [1 ]
Kesner, Adam L.
Solberg, Timothy D.
Dahlbom, Magnus
机构
[1] Univ Calif Los Angeles, David Geffen Sch Med, Dept Mol & Med Pharmacol, Los Angeles, CA 90095 USA
[2] Univ Nebraska Med Ctr, Dept Radiat Oncol, Omaha, NE 68198 USA
关键词
gating; image noise; PET; respiratory motion;
D O I
10.1109/TNS.2006.890014
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
The aim of this study was to quantify image noise and signal recovery in respiratory gated PET. A Jaszczak phantom filled with " F was placed on a custom built motion platform. Different source to background activity ratios were used. An Anzai belt, a surface tension monitoring device, was strapped around the phantom to track the motion and to trigger the gated PET cycle. Data were acquired into 12 bins throughout one gating cycle. The binned data were also summed to produce image sets representing acquisitions with different numbers of gates, including a non-gated image set. The image noise was estimated using the bootstrap method. Images were generated from 100 sinogram replicates and reconstructed using ordered subsets-expectation maximization (OSEM), 4 iterations and 8 subsets. From the reconstructed image replicates, mean and standard deviation images were created, from which the average image signal-to-noise ratio (SNR) and contrast-to-noise ratio (CNR) of each sphere were calculated. The SNR and CNR were evaluated as a function of the number of gates. The SNR and CNR result in the expected Poisson limited correlation with the number of gates for the larger lesions. Because of the motion, the CNR calculated from the images produced with no or few gates is nearly a factor of 2 less than the expected value for the 3 smallest spheres. As the number of gates increases, the CNR correlates with the expected values. Beyond 6 gates, image noise dominates over any signal improvement, which is reflected in the low CNR values of the smallest spheres. The results of this study show that gating can provide improvement in signal recovery with minimal loss of CNR for small, moving lesions.
引用
收藏
页码:66 / 70
页数:5
相关论文
共 12 条
[1]  
Boucher L, 2004, J NUCL MED, V45, P214
[2]   A non-parametric bootstrap approach for analysing the statistical properties of SPECT and PET images [J].
Buvat, I .
PHYSICS IN MEDICINE AND BIOLOGY, 2002, 47 (10) :1761-1775
[3]   The lagging anchor algorithm: Reinforcement learning in two-player zero-sum games with imperfect information [J].
Dahl, FA .
MACHINE LEARNING, 2002, 49 (01) :5-37
[4]  
Lartizien C, 2004, J NUCL MED, V45, P714
[5]  
Mageras G S, 2001, J Appl Clin Med Phys, V2, P191, DOI 10.1120/1.1409235
[6]  
Nehmeh SA, 2003, J NUCL MED, V44, P1644
[7]  
Nehmeh SA, 2002, J NUCL MED, V43, P876
[8]   Effect of respiratory gating on reducing lung motion artifacts in PET imaging of lung cancer [J].
Nehmeh, SA ;
Erdi, YE ;
Ling, CC ;
Rosenzweig, KE ;
Squire, OD ;
Braban, LE ;
Ford, E ;
Sidhu, K ;
Mageras, GS ;
Larson, SM ;
Humm, JL .
MEDICAL PHYSICS, 2002, 29 (03) :366-371
[9]   Non-small cell lung cancer: Nodal staging with FDG PET versus CT with correlative lymph node mapping and sampling [J].
Steinert, HC ;
Hauser, M ;
Allemann, F ;
Engel, H ;
Berthold, T ;
vonSchulthess, GK ;
Weder, W .
RADIOLOGY, 1997, 202 (02) :441-446
[10]   BREATHING PATTERNS .2. DISEASED SUBJECTS [J].
TOBIN, MJ ;
CHADHA, TS ;
JENOURI, G ;
BIRCH, SJ ;
GAZEROGLU, HB ;
SACKNER, MA .
CHEST, 1983, 84 (03) :286-294