Literature DB >> 24265508

FPGA-Based Pulse Pile-Up Correction With Energy and Timing Recovery.

M D Haselman1, J Pasko, S Hauck, T K Lewellen, R S Miyaoka.   

Abstract

Modern field programmable gate arrays (FPGAs) are capable of performing complex discrete signal processing algorithms with clock rates well above 100 MHz. This, combined with FPGA's low expense, ease of use, and selected dedicated hardware make them an ideal technology for a data acquisition system for a positron emission tomography (PET) scanner. The University of Washington is producing a high-resolution, small-animal PET scanner that utilizes FPGAs as the core of the front-end electronics. For this scanner, functions that are typically performed in dedicated circuits, or offline, are being migrated to the FPGA. This will not only simplify the electronics, but the features of modern FPGAs can be utilized to add significant signal processing power to produce higher quality images. In this paper we report on an all-digital pulse pile-up correction algorithm that has been developed for the FPGA. The pile-up mitigation algorithm will allow the scanner to run at higher count rates without incurring large data losses due to the overlapping of scintillation signals. This correction technique utilizes a reference pulse to extract timing and energy information for most pile-up events. Using pulses acquired from a Zecotech Photonics MAPD-N with an LFS-3 scintillator, we show that good timing and energy information can be achieved in the presence of pile-up utilizing a moderate amount of FPGA resources.

Entities:  

Keywords:  Digital signal processing; field programmable gate arrays; imaging; integrated circuits; nuclear medicine; parameter estimation; positron emission tomography; signal analysis; time of arrival estimation

Year:  2012        PMID: 24265508      PMCID: PMC3833626          DOI: 10.1109/TNS.2012.2207403

Source DB:  PubMed          Journal:  IEEE Trans Nucl Sci        ISSN: 0018-9499            Impact factor:   1.679


  8 in total

1.  An 8×8 Row-Column Summing Readout Electronics for Preclinical Positron Emission Tomography Scanners.

Authors:  Y C Shih; F W Sun; L R Macdonald; B P Otis; R S Miyaoka; W McDougald; T K Lewellen
Journal:  IEEE Nucl Sci Symp Conf Rec (1997)       Date:  2009-10-24

2.  A digital method for separation and reconstruction of pile-up events in germanium detectors.

Authors:  M Nakhostin; Zs Podolyak; P H Regan; P M Walker
Journal:  Rev Sci Instrum       Date:  2010-10       Impact factor: 1.523

3.  FPGA-Based Pulse Parameter Discovery for Positron Emission Tomography.

Authors:  Michael Haselman; Scott Hauck; Thomas K Lewellen; Robert S Miyaoka
Journal:  IEEE Nucl Sci Symp Conf Rec (1997)       Date:  2009-10-24

4.  Simulation of Algorithms for Pulse Timing in FPGAs.

Authors:  Michael D Haselman; Scott Hauck; Thomas K Lewellen; Robert S Miyaoka
Journal:  IEEE Nucl Sci Symp Conf Rec (1997)       Date:  2007

5.  New Continuous Miniature Crystal Element (cMiCE) Detector Geometries.

Authors:  Robert S Miyaoka; Xiaoli Li; Cate Lockhart; Tom K Lewellen
Journal:  IEEE Nucl Sci Symp Conf Rec (1997)       Date:  2009-10-24

6.  Evaluation of a clinical scintillation camera with pulse tail extrapolation electronics.

Authors:  T K Lewellen; A N Bice; K R Pollard; J B Zhu; M E Plunkett
Journal:  J Nucl Med       Date:  1989-09       Impact factor: 10.057

7.  Design of an FPGA-Based Algorithm for Real-Time Solutions of Statistics-Based Positioning.

Authors:  Don Dewitt; Nathan G Johnson-Williams; Robert S Miyaoka; Xiaoli Li; Cate Lockhart; Tom K Lewellen; Scott Hauck
Journal:  IEEE Trans Nucl Sci       Date:  2010-02       Impact factor: 1.679

8.  Design of a Second Generation Firewire Based Data Acquisition System for Small Animal PET Scanners.

Authors:  T K Lewellen; R S Miyaoka; L R Macdonald; M Haselman; D Dewitt; William Hunter; S Hauck
Journal:  IEEE Nucl Sci Symp Conf Rec (1997)       Date:  2008-10-19
  8 in total

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