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  4. Compensation of periodic motion for averaging of magnetic particle imaging data
 
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Compensation of periodic motion for averaging of magnetic particle imaging data

Publikationstyp
Conference Paper
Date Issued
2017-10-19
Sprache
English
Author(s)
Schlüter, Matthias  
Gdaniec, Nadine  
Schlaefer, Alexander  
Knopp, Tobias  
Institut
Medizintechnische Systeme E-1  
Biomedizinische Bildgebung E-5  
TORE-URI
http://hdl.handle.net/11420/3441
Article Number
8069549
Citation
2016 IEEE Nuclear Science Symposium, Medical Imaging Conference and Room-Temperature Semiconductor Detector Workshop, NSS/MIC/RTSD 2016 (2017-January): 8069549 (2017-10-16)
Contribution to Conference
2016 IEEE Nuclear Science Symposium, Medical Imaging Conference and Room-Temperature Semiconductor Detector Workshop, NSS/MIC/RTSD  
Publisher DOI
10.1109/NSSMIC.2016.8069549
Scopus ID
2-s2.0-85041519586
Publisher
IEEE
The temporal resolution of magnetic particle imaging (MPI) is sufficiently high to capture dynamic processes like cardiac motion. The achievable spatial resolution of MPI is closely linked to the signal-to-noise ratio of the measured voltage signal. Therefore, in practice it can be advantageous to improve the signal-to-noise ratio by block-wise averaging the signal over time. However, this will decrease the temporal resolution such that cardiac motion is not resolved anymore. In the present work, we introduce a framework for averaging MPI data that exhibit periodic motion induced by e.g. respiration and/or the heart beat. The frequency of motion is directly derived from the MPI raw data without the need for an additional navigator signal. The short time Fourier transform is used for this purpose, because each of these periodic movements will have a frequency varying over time. In order to average the captured frames corresponding to the same phase of the motion, one has to calculate virtual frames since the data acquisition and the periodic motion are not synchronized. In a phantom study it is shown that the developed method is capable of averaging experimental data without introducing any motion artifacts.
DDC Class
610: Medizin
620: Ingenieurwissenschaften
More Funding Information
Supported in part by the German Research Foundation (DFG, grant number AD 125/5 - 1).
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