DocumentCode :
986684
Title :
Real time digital signal processing implementation for an APD-based PET scanner with phoswich detectors
Author :
Fontaine, R. ; Tetrault, Marc-Andre ; Belanger, F. ; Viscogliosi, N. ; Himmich, R. ; Michaud, J.-B. ; Robert, S. ; Leroux, J.-D. ; Semmaoui, H. ; Bérard, P. ; Cadorette, J. ; Pepin, C.M. ; Lecomte, R.
Author_Institution :
Dept. of Electr. & Comput. Eng., Sherbrooke Univ., Que., Canada
Volume :
53
Issue :
3
fYear :
2006
fDate :
6/1/2006 12:00:00 AM
Firstpage :
784
Lastpage :
788
Abstract :
Recent progress in advanced digital signal processing provides an opportunity to expand the computation power required for real time extraction of event characteristics in avalanche photodiode (APD)-based Positron Emission Tomography (PET) scanners. These developments are made possible by a highly parallel data acquisition (DAQ) system based on an integrated analog front-end and a high-speed fully digital signal processing section that directly samples the output of each preamplifier with a free-running, off-the-shelf, 45-MHz analog-to-digital converter that feeds the sampled data into a field programmable gate array (FPGA) VirtexII PRO from Xilinx. This FPGA features ∼ 31 000 logic cells and two PowerPC processors, which allows up to 64 channels to be processed simultaneously. Each channel has its own digital signal processing chain including a trigger, a baseline restorer and a timestamp algorithm. Various timestamp algorithms have been tested so far, achieving a coincidence timing resolution of 3.2-ns full-width at half-maximum (FWHM) for APD coupled to Lutetium Oxyorthosilicate (APD-LSO) and 11.4-ns FWHM for APD coupled to Bismuth Germanium Oxide (APD-BGO) detectors, respectively. Channels are then multiplexed into a DSP processor from Texas Instruments for crystal identification by an ARMAX recursive algorithm borrowed from identification and vector quantization theory. The system can sustain an event rate of 10 000 events/s/channel without electronic dead time.
Keywords :
analogue-digital conversion; avalanche photodiodes; data acquisition; field programmable gate arrays; high energy physics instrumentation computing; nuclear electronics; positron emission tomography; preamplifiers; scintillation counters; signal processing; vector quantisation; ARMAX recursive algorithm; Bismuth Germanium Oxide detector; Lutetium Oxyorthosilicate detector; Texas Instruments for crystal identification; analog front-end digital signal processing; analog-to-digital converter; baseline restorer; field programmable gate array; full-width at half-maximum; high-speed fully digital signal processing; logic cells; parallel data acquisition system; phoswich detectors; power PC processors; preamplifier; real time digital signal processing implementation; timestamp algorithm; timing resolution; vector quantization theory; Analog-digital conversion; Avalanche photodiodes; Data acquisition; Data mining; Detectors; Digital signal processing; Field programmable gate arrays; Positron emission tomography; Preamplifiers; Signal processing algorithms; Avalanche photodiodes (APDs); Positron Emission Tomography (PET); field programmable gate array (FPGA); real time digital signal processing;
fLanguage :
English
Journal_Title :
Nuclear Science, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9499
Type :
jour
DOI :
10.1109/TNS.2006.875441
Filename :
1644942
Link To Document :
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