• DocumentCode
    2615931
  • Title

    A simulation study of the counting-rate performance of clinical pet systems applying a methodology for optimizing the injected dose

  • Author

    Karakatsanis, Nicolas A. ; Parasyris, Anastasios ; Loudos, George ; Nikita, Konstantina S.

  • Author_Institution
    Department of Electrical and Computer Engineer, Biomedical Simulations and Imaging Laboratory of the National Technical University of Athens, 9 Iroon, Polutechniou St., 15780, Greece
  • fYear
    2008
  • fDate
    19-25 Oct. 2008
  • Firstpage
    5014
  • Lastpage
    5019
  • Abstract
    The amount of radioactivity injected into patients during clinical PET scans can be critical when designing data acquisition protocols. The objective is to generate projection data with high statistical quality, while the acquisition time remains relatively short and the total amount of injected activity does not exceed a certain level, above which the count losses, due to dead-time effects, become significant. For this purpose an optimal range of total injected activity levels can be determined by employing the performance parameter of the Noise Equivalent Count Rate (NECR). NECR is defined as a metric of the rate in which statistically important coincidence events are counted by a PET system. The NECR depends on the total amount of injected activity and demonstrates a peak value for a certain range of activity levels. However this dependence can be affected by certain patient- and scanner-related parameters causing the shift of the range. Therefore the optimal range can be determined by estimating the NECR response as a function of the activity for a particular scanner-patient system. This is not practical for clinical studies, as it would require the repetition of the method for each patient. In this work we propose an alternative method based on a series of simulations of imaging systems and realistic human phantoms. We used Geant4 Application for Tomography Emission to simulate the independent effect of certain parameters to the NECR. We investigated the relationship between the NECR and the patient size, relative axial position of the patient to the field of view (FOV) of the scanner, combined use of reduced dead time electronics and LSO crystals instead of slow-responding electronics and BGO and finally of the energy window. We used two validated scanner models, three NCAT phantoms, two bed positions and three energy windows. The results show an optimal range of 55–65MBq for HR+ and 300–450MBq for Biograph, when the heart is located at the cen- - tre of FOV.
  • Keywords
    Biomedical imaging; Data acquisition; Design optimization; Educational technology; Imaging phantoms; Noise level; Nuclear and plasma sciences; Optimization methods; Positron emission tomography; Protocols;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Nuclear Science Symposium Conference Record, 2008. NSS '08. IEEE
  • Conference_Location
    Dresden, Germany
  • ISSN
    1095-7863
  • Print_ISBN
    978-1-4244-2714-7
  • Electronic_ISBN
    1095-7863
  • Type

    conf

  • DOI
    10.1109/NSSMIC.2008.4774367
  • Filename
    4774367