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Dive into the research topics where T. Bednarski is active.

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Featured researches published by T. Bednarski.


Nuclear Instruments & Methods in Physics Research Section A-accelerators Spectrometers Detectors and Associated Equipment | 2015

A novel method for the line-of-response and time-of-flight reconstruction in TOF-PET detectors based on a library of synchronized model signals

P. Moskal; Natalia Zoń; T. Bednarski; P. Białas; E. Czerwiński; A. Gajos; D. Kamińska; Ł. Kapłon; Andrzej Kochanowski; G. Korcyl; Jakub Kowal; P. Kowalski; T. Kozik; W. Krzemien; E. Kubicz; Sz. Niedźwiecki; M. Palka; L. Raczyński; Z. Rudy; Oleksandr Rundel; P. Salabura; Neha Sharma; M. Silarski; A. Słomski; J. Smyrski; A. Strzelecki; A. Wieczorek; W. Wiślicki; M. Zieliński

A novel method of hit time and hit position reconstruction in scintillator detectors is described. The method is based on comparison of detector signals with results stored in a library of synchronized model signals registered for a set of well-defined positions of scintillation points. The hit position is reconstructed as the one corresponding to the signal from the library which is most similar to the measurement signal. The time of the interaction is determined as a relative time between the measured signal and the most similar one in the library. A degree of similarity of measured and model signals is defined as the distance between points representing the measurement- and model-signal in the multidimensional measurement space. Novelty of the method lies also in the proposed way of synchronization of model signals enabling direct determination of the difference between time-of-flights (TOF) of annihilation quanta from the annihilation point to the detectors. The introduced method was validated using experimental data obtained by means of the double strip prototype of the J-PET detector and 22 Na


Nuclear Instruments & Methods in Physics Research Section A-accelerators Spectrometers Detectors and Associated Equipment | 2014

Test of a single module of the J-PET scanner based on plastic scintillators

P. Moskal; Sz. Niedźwiecki; T. Bednarski; E. Czerwiński; Ł. Kapłon; E. Kubicz; Ines Moskal; M. Pawlik-Niedźwiecka; Neha Sharma; M. Silarski; M. Zieliński; Natalia Zoń; P. Białas; A. Gajos; Andrzej Kochanowski; G. Korcyl; Jakub Kowal; P. Kowalski; T. Kozik; W. Krzemien; Marcin Molenda; M. Palka; L. Raczyński; Z. Rudy; P. Salabura; A. Słomski; J. Smyrski; A. Strzelecki; A. Wieczorek; W. Wiślicki

A Time of Flight Positron Emission Tomography scanner based on plastic scintillators is being developed at the Jagiellonian University by the J-PET collaboration. The main challenge of the conducted research lies in the elaboration of a method allowing application of plastic scintillators for the detection of low energy gamma quanta. In this paper we report on tests of a single detection module built out from the BC-420 plastic scintillator strip (with dimensions of 5 � 19 � 300 mm 3 ) read out at two ends by Hamamatsu R5320 photomultipliers. The measurements were performed using collimated beam of annihilation quanta from the 68 Ge isotope and applying the Serial Data Analyzer (Lecroy SDA6000A) which enabled sampling of signals with 50 ps intervals. The time resolution of the prototype module was established to be better than 80 ps (σ) for a single level discrimination. The spatial resolution of the determination of the hit position along the strip was determined to be about 0.93 cm (σ) for the annihilation quanta. The fractional energy resolution for the energy E deposited by the annihilation quanta via the Compton scattering amounts to σðEÞ=E � 0:044= ffiffiffiffiffiffiffiffiffiffiffiffiffiffiffiffi EðMeVÞ p


Nuclear Instruments & Methods in Physics Research Section A-accelerators Spectrometers Detectors and Associated Equipment | 2014

Novel method for hit-position reconstruction using voltage signals in plastic scintillators and its application to Positron Emission Tomography

L. Raczyński; P. Moskal; P. Kowalski; W. Wiślicki; T. Bednarski; P. Białas; E. Czerwiński; Ł. Kapłon; Andrzej Kochanowski; G. Korcyl; Jakub Kowal; T. Kozik; W. Krzemien; E. Kubicz; Marcin Molenda; Ines Moskal; Sz. Niedźwiecki; M. Palka; M. Pawlik-Niedźwiecka; Z. Rudy; P. Salabura; Neha Sharma; M. Silarski; A. Słomski; J. Smyrski; A. Strzelecki; A. Wieczorek; M. Zieliński; Natalia Zoń

Currently inorganic scintillator detectors are used in all commercial Time of Flight Positron Emission Tomograph (TOF-PET) devices. The J-PET collaboration investigates a possibility of construction of a PET scanner from plastic scintillators which would allow for single bed imaging of the whole human body. This paper describes a novel method of hit-position reconstruction based on sampled signals and an example of an application of the method for a single module with a 30 cm long plastic strip, read out on both ends by Hamamatsu R4998 photomultipliers. The sampling scheme to generate a vector with samples of a PET event waveform with respect to four user-defined amplitudes is introduced. The experimental setup provides irradiation of a chosen position in the plastic scintillator strip with an annihilation gamma quanta of energy 511 keV. The statistical test for a multivariate normal (MVN) distribution of measured vectors at a given position is developed, and it is shown that signals sampled at four thresholds in a voltage domain are approximately normally distributed variables. With the presented method of a vector analysis made out of waveform samples acquired with four thresholds, we obtain a spatial resolution of about 1 cm and a timing resolution of about 80 ps ( σ).


Nuclear Instruments & Methods in Physics Research Section A-accelerators Spectrometers Detectors and Associated Equipment | 2015

Compressive sensing of signals generated in plastic scintillators in a novel J-PET instrument

L. Raczyński; P. Moskal; P. Kowalski; W. Wiślicki; T. Bednarski; P. Białas; E. Czerwiński; A. Gajos; Ł. Kapłon; Andrzej Kochanowski; G. Korcyl; Jakub Kowal; T. Kozik; W. Krzemien; E. Kubicz; Sz. Niedźwiecki; M. Palka; Z. Rudy; Oleksandr Rundel; P. Salabura; Neha Sharma; M. Silarski; A. Słomski; J. Smyrski; A. Strzelecki; A. Wieczorek; M. Zieliński; Natalia Zoń

The J-PET scanner, which allows for single bed imaging of the whole human body, is currently under development at the Jagiellonian University. The discussed detector offers improvement of the Time of Flight (TOF) resolution due to the use of fast plastic scintillators and dedicated electronics allowing for sampling in the voltage domain of signals with durations of few nanoseconds. In this paper we show that recovery of the whole signal, based on only a few samples, is possible. In order to do that, we incorporate the training signals into the Tikhonov regularization framework and we perform the Principal Component Analysis decomposition, which is well known for its compaction properties. The method yields a simple closed form analytical solution that does not require iterative processing. Moreover, from the Bayes theory the properties of regularized solution, especially its covariance matrix, may be easily derived. This is the key to introduce and prove the formula for calculations of the signal recovery error. In this paper we show that an average recovery error is approximately inversely proportional to the number of acquired samples.


Bio-Algorithms and Med-Systems | 2014

A novel method based solely on field programmable gate array (FPGA) units enabling measurement of time and charge of analog signals in positron emission tomography (PET)

M. Palka; P. Moskal; T. Bednarski; P. Białas; E. Czerwiński; Ł. Kapłon; Andrzej Kochanowski; G. Korcyl; Jakub Kowal; P. Kowalski; T. Kozik; Wojciech Krzemień; Marcin Molenda; Szymon Niedźwiecki; Monika Pawlik; Lech Razyński; Z. Rudy; P. Salabura; Neha Gupta-Sharma; M. Silarski; A. Słomski; Jerzy Smyrski; A. Strzelecki; W. Wiślicki; M. Zieliński; Natalia Zoń

Abstract This article presents an application of a novel technique for precise measurements of time and charge based solely on a field programmable gate array (FPGA) device for positron emission tomography (PET). The described approach simplifies electronic circuits, reduces the power consumption, lowers costs, merges front-end electronics with digital electronics, and also makes more compact final design. Furthermore, it allows to measure time when analog signals cross a reference voltage at different threshold levels with a very high precision of ~15 ps (rms) and thus enables sampling of signals in a voltage domain.


Physics in Medicine and Biology | 2016

Time resolution of the plastic scintillator strips with matrix photomultiplier readout for J-PET tomograph.

P. Moskal; Oleksandr Rundel; D. Alfs; T. Bednarski; P. Białas; E. Czerwiński; A. Gajos; Krzysztof Giergiel; M. Gorgol; B. Jasińska; D. Kamińska; Ł. Kapłon; G. Korcyl; P. Kowalski; T. Kozik; W. Krzemien; E. Kubicz; Sz. Niedźwiecki; M. Palka; L. Raczyński; Z. Rudy; Neha Sharma; A. Słomski; M. Silarski; A. Strzelecki; A. Wieczorek; W. Wiślicki; Piotr Witkowski; M. Zieliński; Natalia Zoń

Recent tests of a single module of the Jagiellonian Positron Emission Tomography system (J-PET) consisting of 30 cm long plastic scintillator strips have proven its applicability for the detection of annihilation quanta (0.511 MeV) with a coincidence resolving time (CRT) of 0.266 ns. The achieved resolution is almost by a factor of two better with respect to the current TOF-PET detectors and it can still be improved since, as it is shown in this article, the intrinsic limit of time resolution for the determination of time of the interaction of 0.511 MeV gamma quanta in plastic scintillators is much lower. As the major point of the article, a method allowing to record timestamps of several photons, at two ends of the scintillator strip, by means of matrix of silicon photomultipliers (SiPM) is introduced. As a result of simulations, conducted with the number of SiPM varying from 4 to 42, it is shown that the improvement of timing resolution saturates with the growing number of photomultipliers, and that the [Formula: see text] configuration at two ends allowing to read twenty timestamps, constitutes an optimal solution. The conducted simulations accounted for the emission time distribution, photon transport and absorption inside the scintillator, as well as quantum efficiency and transit time spread of photosensors, and were checked based on the experimental results. Application of the [Formula: see text] matrix of SiPM allows for achieving the coincidence resolving time in positron emission tomography of [Formula: see text]0.170 ns for 15 cm axial field-of-view (AFOV) and [Formula: see text]0.365 ns for 100 cm AFOV. The results open perspectives for construction of a cost-effective TOF-PET scanner with significantly better TOF resolution and larger AFOV with respect to the current TOF-PET modalities.


Acta Physica Polonica B | 2016

Sampling FEE and Trigger-less DAQ for the J-PET Scanner

G. Korcyl; D. Alfs; T. Bednarski; P. Białas; E. Czerwiński; K. Dulski; A. Gajos; B. Głowacz; B. Jasińska; D. Kamińska; Ł. Kapłon; P. Kowalski; T. Kozik; W. Krzemien; E. Kubicz; M. Mohammed; Sz. Niedźwiecki; M. Palka; M. Pawlik-Niedźwiecka; L. Raczyński; Z. Rudy; O. Rundel; Neha Sharma; M. Silarski; A. Słomski; Karol Stoła; A. Strzelecki; A. Wieczorek; W. Wiślicki; B. Zgardzińska

In this paper, we present a complete Data Acquisition System (DAQ) together with the readout mechanisms for the J-PET tomography scanner. In general detector readout chain is constructed out of Front-End Electronics (FEE), measurement devices like Time-to-Digital or Analog-to-Digital Converters (TDCs or ADCs), data collectors and storage. We have developed a system capable for maintaining continuous readout of digitized data without preliminary selection. Such operation mode results in up to 8 Gbps data stream, therefore it is required to introduce a dedicated module for online event building and feature extraction. The Central Controller Module, equipped with Xilinx Zynq SoC and 16 optical transceivers serves as such true real time computing facility. Our solution for the continuous data recording (trigger-less) is a novel approach in such detector systems and assures that most of the information is preserved on the storage for further, high-level processing. Signal discrimination applies an unique method of using LVDS buffers located in the FPGA fabric.


Acta Physica Polonica B | 2016

Potential of the J-PET Detector for Studies of Discrete Symmetries in Decays of Positronium Atom --- A Purely Leptonic System

P. Moskal; D. Alfs; T. Bednarski; P. Białas; E. Czerwiński; C. Curceanu; A. Gajos; B. Głowacz; M. Gorgol; Beatrix C. Hiesmayr; B. Jasińska; D. Kamińska; G. Korcyl; P. Kowalski; T. Kozik; W. Krzemien; N. Krawczyk; E. Kubicz; M. Mohammed; Sz. Niedźwiecki; M. Pawlik-Niedźwiecka; L. Raczyński; Z. Rudy; M. Silarski; A. Wieczorek; W. Wiślicki; M. Zieliński

The Jagiellonian Positron Emission Tomograph (J-PET) was constructed as a prototype of the cost-effective scanner for the simultaneous metabolic imaging of the whole human body. Being optimized for the detection of photons from the electron-positron annihilation with high time- and high angular-resolution, it constitutes a multi-purpose detector providing new opportunities for studying the decays of positronium atoms. Positronium is the lightest purely leptonic object decaying into photons. As an atom bound by a central potential it is a parity eigenstate, and as an atom built out of an electron and an anti-electron it is an eigenstate of the charge conjugation operator. Therefore, the positronium is a unique laboratory to study discrete symmetries whose precision is limited in principle by the effects due to the weak interactions expected at the level of (~10


Acta Physica Polonica A | 2015

Multiple scattering and accidental coincidences in the J-PET detector simulated using GATE package

P. Kowalski; P. Moskal; W. Wiślicki; L. Raczyński; T. Bednarski; P. Białas; Jarosław Bułka; E. Czerwiński; A. Gajos; A. Gruntowski; D. Kamińska; Ł. Kapłon; Andrzej Kochanowski; G. Korcyl; Janusz Kowal; T. Kozik; W. Krzemien; E. Kubicz; Sz. Niedźwiecki; M. Palka; Z. Rudy; P. Salabura; Neha Sharma; M. Silarski; A. Słomski; J. Smyrski; A. Strzelecki; A. Wieczorek; Ireneusz Wochlik; M. Zieliński

^{-14}


Acta Physica Polonica A | 2015

A pilot study of the novel J-PET plastic scintillator with 2-(4-styrylphenyl)benzoxazole as a wavelength shifter

A. Wieczorek; P. Moskal; Sz. Niedźwiecki; T. Bednarski; P. Białas; E. Czerwiński; Andrzej Danel; A. Gajos; A. Gruntowski; D. Kamińska; Ł. Kapłon; Andrzej Kochanowski; G. Korcyl; Jakub Kowal; P. Kowalski; T. Kozik; W. Krzemien; E. Kubicz; Marcin Molenda; M. Palka; L. Raczyński; Z. Rudy; Oleksandr Rundel; P. Salabura; Neha Sharma; M. Silarski; A. Słomski; J. Smyrski; A. Strzelecki; Tomasz Uchacz

) and photon-photon interactions expected at the level of (~10

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G. Korcyl

Jagiellonian University

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Z. Rudy

Jagiellonian University

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M. Silarski

Jagiellonian University

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P. Białas

Jagiellonian University

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P. Kowalski

Maria Curie-Skłodowska University

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L. Raczyński

Maria Curie-Skłodowska University

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T. Kozik

Jagiellonian University

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M. Palka

Jagiellonian University

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