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DOI estimation through signal arrival time distribution: a theoretical description including proof of concept measurements

The challenge to reach 10 ps coincidence time resolution (CTR) in time-of-flight positron emission tomography (TOF-PET) is triggering major efforts worldwide, but timing improvements of scintillation detectors will remain elusive without depth-of-interaction (DOI) correction in long crystals. Noneth...

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Autores principales: Loignon-Houle, Francis, Gundacker, Stefan, Toussaint, Maxime, Camirand Lemyre, Félix, Auffray, Etiennette, Fontaine, Réjean, Charlebois, Serge A, Lecoq, Paul, Lecomte, Roger
Lenguaje:eng
Publicado: 2021
Materias:
Acceso en línea:https://dx.doi.org/10.1088/1361-6560/abf604
http://cds.cern.ch/record/2767768
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author Loignon-Houle, Francis
Gundacker, Stefan
Toussaint, Maxime
Camirand Lemyre, Félix
Auffray, Etiennette
Fontaine, Réjean
Charlebois, Serge A
Lecoq, Paul
Lecomte, Roger
author_facet Loignon-Houle, Francis
Gundacker, Stefan
Toussaint, Maxime
Camirand Lemyre, Félix
Auffray, Etiennette
Fontaine, Réjean
Charlebois, Serge A
Lecoq, Paul
Lecomte, Roger
author_sort Loignon-Houle, Francis
collection CERN
description The challenge to reach 10 ps coincidence time resolution (CTR) in time-of-flight positron emission tomography (TOF-PET) is triggering major efforts worldwide, but timing improvements of scintillation detectors will remain elusive without depth-of-interaction (DOI) correction in long crystals. Nonetheless, this momentum opportunely brings up the prospect of a fully time-based DOI estimation since fast timing signals intrinsically carry DOI information, even with a traditional single-ended readout. Consequently, extracting features of the detected signal time distribution could uncover the spatial origin of the interaction and in return, provide enhancement on the timing precision of detectors. We demonstrate the validity of a time-based DOI estimation concept in two steps. First, experimental measurements were carried out with current LSO:Ce:Ca crystals coupled to FBK NUV-HD SiPMs read out by fast high-frequency electronics to provide new evidence of a distinct DOI effect on CTR not observable before with slower electronics. Using this detector, a DOI discrimination using a double-threshold scheme on the analog timing signal together with the signal intensity information was also developed without any complex readout or detector modification. As a second step, we explored by simulation the anticipated performance requirements of future detectors to efficiently estimate the DOI and we proposed four estimators that exploit either more generic or more precise features of the DOI-dependent timestamp distribution. A simple estimator using the time difference between two timestamps provided enhanced CTR. Additional improvements were achieved with estimators using multiple timestamps (e.g. kernel density estimation and neural network) converging to the Cramér–Rao lower bound developed in this work for a time-based DOI estimation. This two-step study provides insights on current and future possibilities in exploiting the timing signal features for DOI estimation aiming at ultra-fast CTR while maintaining detection efficiency for TOF PET.
id oai-inspirehep.net-1861428
institution Organización Europea para la Investigación Nuclear
language eng
publishDate 2021
record_format invenio
spelling oai-inspirehep.net-18614282021-05-27T21:50:55Zdoi:10.1088/1361-6560/abf604http://cds.cern.ch/record/2767768engLoignon-Houle, FrancisGundacker, StefanToussaint, MaximeCamirand Lemyre, FélixAuffray, EtiennetteFontaine, RéjeanCharlebois, Serge ALecoq, PaulLecomte, RogerDOI estimation through signal arrival time distribution: a theoretical description including proof of concept measurementsDetectors and Experimental TechniquesThe challenge to reach 10 ps coincidence time resolution (CTR) in time-of-flight positron emission tomography (TOF-PET) is triggering major efforts worldwide, but timing improvements of scintillation detectors will remain elusive without depth-of-interaction (DOI) correction in long crystals. Nonetheless, this momentum opportunely brings up the prospect of a fully time-based DOI estimation since fast timing signals intrinsically carry DOI information, even with a traditional single-ended readout. Consequently, extracting features of the detected signal time distribution could uncover the spatial origin of the interaction and in return, provide enhancement on the timing precision of detectors. We demonstrate the validity of a time-based DOI estimation concept in two steps. First, experimental measurements were carried out with current LSO:Ce:Ca crystals coupled to FBK NUV-HD SiPMs read out by fast high-frequency electronics to provide new evidence of a distinct DOI effect on CTR not observable before with slower electronics. Using this detector, a DOI discrimination using a double-threshold scheme on the analog timing signal together with the signal intensity information was also developed without any complex readout or detector modification. As a second step, we explored by simulation the anticipated performance requirements of future detectors to efficiently estimate the DOI and we proposed four estimators that exploit either more generic or more precise features of the DOI-dependent timestamp distribution. A simple estimator using the time difference between two timestamps provided enhanced CTR. Additional improvements were achieved with estimators using multiple timestamps (e.g. kernel density estimation and neural network) converging to the Cramér–Rao lower bound developed in this work for a time-based DOI estimation. This two-step study provides insights on current and future possibilities in exploiting the timing signal features for DOI estimation aiming at ultra-fast CTR while maintaining detection efficiency for TOF PET.oai:inspirehep.net:18614282021
spellingShingle Detectors and Experimental Techniques
Loignon-Houle, Francis
Gundacker, Stefan
Toussaint, Maxime
Camirand Lemyre, Félix
Auffray, Etiennette
Fontaine, Réjean
Charlebois, Serge A
Lecoq, Paul
Lecomte, Roger
DOI estimation through signal arrival time distribution: a theoretical description including proof of concept measurements
title DOI estimation through signal arrival time distribution: a theoretical description including proof of concept measurements
title_full DOI estimation through signal arrival time distribution: a theoretical description including proof of concept measurements
title_fullStr DOI estimation through signal arrival time distribution: a theoretical description including proof of concept measurements
title_full_unstemmed DOI estimation through signal arrival time distribution: a theoretical description including proof of concept measurements
title_short DOI estimation through signal arrival time distribution: a theoretical description including proof of concept measurements
title_sort doi estimation through signal arrival time distribution: a theoretical description including proof of concept measurements
topic Detectors and Experimental Techniques
url https://dx.doi.org/10.1088/1361-6560/abf604
http://cds.cern.ch/record/2767768
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