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Solving a Deconvolution Problem in Photon Spectrometry
We solve numerically a deconvolution problem to extract the undisturbed spectrum from the measured distribution contaminated by the finite resolution of the measuring device. A problem of this kind emerges when one wants to infer the momentum distribution of the neutral pions by detecting the it dec...
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Lenguaje: | eng |
Publicado: |
2010
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Materias: | |
Acceso en línea: | https://dx.doi.org/10.1016/j.nima.2010.03.148 http://cds.cern.ch/record/1359322 |
_version_ | 1780922628942331904 |
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author | Aleksandrov, D Vikhlyantsev, O Hille, P T Polichtchouk, B Kharlov, Y Sukhorukov, M Wang, D Shabratova, G Demanov, V Wang, Y Tveter, T Faltys, M Mao, Y Larsen, D T Zaporozhets, S Sibiryak, I Lovhoiden, G Potcheptsov, T Kucheryaev, Y Basmanov, V Mares, J Yanovsky, V Qvigstad, H Zenin, A Nikolaev, S Siemiarczuk, T Yuan, X Cai, X Redlich, K Pavlinov, A Roehrich, D Manko, V Deloff, A Ma, K Maruyama, Y Dobrowolski, T Shigaki, K Nikulin, S Wan, R Mizoguchi, K Petrov, V Mueller, H Ippolitov, M Liu, L Sadovsky, S Stolpovsky, P Kurashvili, P Nomokonov, P Xu, C Torii, H Il'kaev, R Zhang, X Peresunko, D Soloviev, A Vodopyanov, A Sugitate, T Ullaland, K Huang, M Zhou, D Nystrand, J Punin, V Yin, Z Batyunya, B Karadzhev, K Nazarov, G Fil'chagin, S Nazarenko, S Buskenes, J I Horaguchi, T Djuvsland, O Chuman, F Senko, V Alme, J Wilk, G Fehlker, D Vinogradov, Y Budilov, V Iwasaki, T Ilkiv, I Budnikov, D Vinogradov, A Kazantsev, A Bogolyubsky, M Lindal, S Polak, K Skaali, B Mamonov, A Kuryakin, A Wikne, J Skjerdal, K |
author_facet | Aleksandrov, D Vikhlyantsev, O Hille, P T Polichtchouk, B Kharlov, Y Sukhorukov, M Wang, D Shabratova, G Demanov, V Wang, Y Tveter, T Faltys, M Mao, Y Larsen, D T Zaporozhets, S Sibiryak, I Lovhoiden, G Potcheptsov, T Kucheryaev, Y Basmanov, V Mares, J Yanovsky, V Qvigstad, H Zenin, A Nikolaev, S Siemiarczuk, T Yuan, X Cai, X Redlich, K Pavlinov, A Roehrich, D Manko, V Deloff, A Ma, K Maruyama, Y Dobrowolski, T Shigaki, K Nikulin, S Wan, R Mizoguchi, K Petrov, V Mueller, H Ippolitov, M Liu, L Sadovsky, S Stolpovsky, P Kurashvili, P Nomokonov, P Xu, C Torii, H Il'kaev, R Zhang, X Peresunko, D Soloviev, A Vodopyanov, A Sugitate, T Ullaland, K Huang, M Zhou, D Nystrand, J Punin, V Yin, Z Batyunya, B Karadzhev, K Nazarov, G Fil'chagin, S Nazarenko, S Buskenes, J I Horaguchi, T Djuvsland, O Chuman, F Senko, V Alme, J Wilk, G Fehlker, D Vinogradov, Y Budilov, V Iwasaki, T Ilkiv, I Budnikov, D Vinogradov, A Kazantsev, A Bogolyubsky, M Lindal, S Polak, K Skaali, B Mamonov, A Kuryakin, A Wikne, J Skjerdal, K |
author_sort | Aleksandrov, D |
collection | CERN |
description | We solve numerically a deconvolution problem to extract the undisturbed spectrum from the measured distribution contaminated by the finite resolution of the measuring device. A problem of this kind emerges when one wants to infer the momentum distribution of the neutral pions by detecting the it decay photons using the photon spectrometer of the ALICE LHC experiment at CERN {[}1]. The underlying integral equation connecting the sought for pion spectrum and the measured gamma spectrum has been discretized and subsequently reduced to a system of linear algebraic equations. The latter system, however, is known to be ill-posed and must be regularized to obtain a stable solution. This task has been accomplished here by means of the Tikhonov regularization scheme combined with the L-curve method. The resulting pion spectrum is in an excellent quantitative agreement with the pion spectrum obtained from a Monte Carlo simulation. (C) 2010 Elsevier B.V. All rights reserved. |
id | cern-1359322 |
institution | Organización Europea para la Investigación Nuclear |
language | eng |
publishDate | 2010 |
record_format | invenio |
spelling | cern-13593222019-09-30T06:29:59Zdoi:10.1016/j.nima.2010.03.148http://cds.cern.ch/record/1359322engAleksandrov, DVikhlyantsev, OHille, P TPolichtchouk, BKharlov, YSukhorukov, MWang, DShabratova, GDemanov, VWang, YTveter, TFaltys, MMao, YLarsen, D TZaporozhets, SSibiryak, ILovhoiden, GPotcheptsov, TKucheryaev, YBasmanov, VMares, JYanovsky, VQvigstad, HZenin, ANikolaev, SSiemiarczuk, TYuan, XCai, XRedlich, KPavlinov, ARoehrich, DManko, VDeloff, AMa, KMaruyama, YDobrowolski, TShigaki, KNikulin, SWan, RMizoguchi, KPetrov, VMueller, HIppolitov, MLiu, LSadovsky, SStolpovsky, PKurashvili, PNomokonov, PXu, CTorii, HIl'kaev, RZhang, XPeresunko, DSoloviev, AVodopyanov, ASugitate, TUllaland, KHuang, MZhou, DNystrand, JPunin, VYin, ZBatyunya, BKaradzhev, KNazarov, GFil'chagin, SNazarenko, SBuskenes, J IHoraguchi, TDjuvsland, OChuman, FSenko, VAlme, JWilk, GFehlker, DVinogradov, YBudilov, VIwasaki, TIlkiv, IBudnikov, DVinogradov, AKazantsev, ABogolyubsky, MLindal, SPolak, KSkaali, BMamonov, AKuryakin, AWikne, JSkjerdal, KSolving a Deconvolution Problem in Photon SpectrometryDetectors and Experimental TechniquesWe solve numerically a deconvolution problem to extract the undisturbed spectrum from the measured distribution contaminated by the finite resolution of the measuring device. A problem of this kind emerges when one wants to infer the momentum distribution of the neutral pions by detecting the it decay photons using the photon spectrometer of the ALICE LHC experiment at CERN {[}1]. The underlying integral equation connecting the sought for pion spectrum and the measured gamma spectrum has been discretized and subsequently reduced to a system of linear algebraic equations. The latter system, however, is known to be ill-posed and must be regularized to obtain a stable solution. This task has been accomplished here by means of the Tikhonov regularization scheme combined with the L-curve method. The resulting pion spectrum is in an excellent quantitative agreement with the pion spectrum obtained from a Monte Carlo simulation. (C) 2010 Elsevier B.V. All rights reserved.oai:cds.cern.ch:13593222010 |
spellingShingle | Detectors and Experimental Techniques Aleksandrov, D Vikhlyantsev, O Hille, P T Polichtchouk, B Kharlov, Y Sukhorukov, M Wang, D Shabratova, G Demanov, V Wang, Y Tveter, T Faltys, M Mao, Y Larsen, D T Zaporozhets, S Sibiryak, I Lovhoiden, G Potcheptsov, T Kucheryaev, Y Basmanov, V Mares, J Yanovsky, V Qvigstad, H Zenin, A Nikolaev, S Siemiarczuk, T Yuan, X Cai, X Redlich, K Pavlinov, A Roehrich, D Manko, V Deloff, A Ma, K Maruyama, Y Dobrowolski, T Shigaki, K Nikulin, S Wan, R Mizoguchi, K Petrov, V Mueller, H Ippolitov, M Liu, L Sadovsky, S Stolpovsky, P Kurashvili, P Nomokonov, P Xu, C Torii, H Il'kaev, R Zhang, X Peresunko, D Soloviev, A Vodopyanov, A Sugitate, T Ullaland, K Huang, M Zhou, D Nystrand, J Punin, V Yin, Z Batyunya, B Karadzhev, K Nazarov, G Fil'chagin, S Nazarenko, S Buskenes, J I Horaguchi, T Djuvsland, O Chuman, F Senko, V Alme, J Wilk, G Fehlker, D Vinogradov, Y Budilov, V Iwasaki, T Ilkiv, I Budnikov, D Vinogradov, A Kazantsev, A Bogolyubsky, M Lindal, S Polak, K Skaali, B Mamonov, A Kuryakin, A Wikne, J Skjerdal, K Solving a Deconvolution Problem in Photon Spectrometry |
title | Solving a Deconvolution Problem in Photon Spectrometry |
title_full | Solving a Deconvolution Problem in Photon Spectrometry |
title_fullStr | Solving a Deconvolution Problem in Photon Spectrometry |
title_full_unstemmed | Solving a Deconvolution Problem in Photon Spectrometry |
title_short | Solving a Deconvolution Problem in Photon Spectrometry |
title_sort | solving a deconvolution problem in photon spectrometry |
topic | Detectors and Experimental Techniques |
url | https://dx.doi.org/10.1016/j.nima.2010.03.148 http://cds.cern.ch/record/1359322 |
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