Title :
Fast circuit topology for spatial signal distribution analysis
Author :
Lerche, Ch.W. ; Herrero-Bosch, V. ; Spaggiari, M. ; Mateo-Jimenez, F. ; Monz-Ferrer, J.M. ; Colom-Palero, R.J. ; Mora-Mas, F.
Author_Institution :
Inst. de Instrumentacin de Imagen Mol., Univ. Politec. de Valencia, Valencia, Spain
Abstract :
We present a novel active and analog readout and preprocessing topology for position sensitive photodetectors (PSPD) that allows to readout a large variety of PSPD devices with different pixel numbers. Additionally, the topology was designed to allow for a significant reduction of analog-to-digital conversion channels. The circuit topology replaces the common passive charge divider and consists of N input stages, N × M weighting stages and M analog adder stages, where N is the number of the input channels, i.e. the number of photodetector pixels and M is the number of outputs. The circuit performs the multiplication of a matrix (the weights) with a vector (signals). For this, the input stage makes M copies of each of the N input signals, the weighting stage multiplies these signal copies with N × M different weights and the output stage adds all weighted copies with the same copy index. For high flexibility, the weights are programmable and the topology allows to interconnect several identical circuits for larger N. As application for the circuit, we present a Neural Network based positioning scheme for γ-ray imaging detectors with thick, monolithic scintillation crystals. We used Monte Carlo simulation for training and evaluation of the method and found that the spatial resolution of the γ-ray imaging detectors was significantly enhanced. The strong border artifacts of the center of gravity positioning scheme in monolithic scintillation crystals could be corrected to a large extent.
Keywords :
Monte Carlo methods; adders; analogue-digital conversion; gamma-ray detection; interconnections; matrix multiplication; network topology; neural net architecture; nuclear electronics; photodetectors; position sensitive particle detectors; radioisotope imaging; readout electronics; γ-ray imaging detector; Monte Carlo simulation; PSPD device; analog adder stage; analog readout; analog-to-digital conversion channel; center of gravity positioning scheme; circuit topology; matrix multiplication; monolithic scintillation crystal; neural network based positioning scheme; passive charge divider; photodetector pixel; position sensitive photodetector; preprocessing topology; spatial signal distribution analysis; Artificial neural networks; Crystals; Detectors; Photodetectors; Pixel; Polynomials; Positron emission tomography;
Conference_Titel :
Real Time Conference (RT), 2010 17th IEEE-NPSS
Conference_Location :
Lisbon
Print_ISBN :
978-1-4244-7108-9
DOI :
10.1109/RTC.2010.5750391