Researcher Portfolio

 
   

Uecker, M.

Biomedical NMR Research GmbH, MPI for biophysical chemistry, Max Planck Society  

 

Researcher Profile

 
Position: Biomedical NMR Research GmbH, MPI for biophysical chemistry, Max Planck Society
Researcher ID: https://pure.mpg.de/cone/persons/resource/persons15943

External references

 

Publications

 
 
 : Roeloffs, V. B., Uecker, M., & Frahm, J. (2019). Joint T1 and T2 mapping with tiny dictionaries and subspace-constrained reconstruction. IEEE Transactions on Medical Imaging, (in press). doi:10.1109/TMI.2019.2939130. [PubMan] : Schätz, S., Voit, D., Frahm, J., & Uecker, M. (2017). Accelerated computing in magnetic resonance imaging: Real-time imaging using nonlinear inverse reconstruction. Computational and Mathematical Methods in Medicine, 2017: 3527269. doi:10.1155/2017/3527269. [PubMan] : Sumpf, T., Petrovic, A., Uecker, M., Knoll, F., & Frahm, J. (2014). Fast T2 mapping with improved accuracy using undersampled spin-echo MRI and model-based reconstructions with a generating function. IEEE Transactions on Medical Imaging, 33(12), 2213-2222. doi:10.1109/TMI.2014.2333370. [PubMan] : Moussavi, A., Untenberger, M., Uecker, M., & Frahm, J. (2014). Correction of gradient-induced phase errors in radial MRI. Magnetic Resonance in Medicine, 71(1), 308-312. doi:10.1002/mrm.24643. [PubMan] : Niebergall, A., Zhang, S., Kunay, E., Keydana, G., Job, M., Uecker, M., & Frahm, J. (2013). Real-time MRI of speaking at a resolution of 33 ms: Undersampled radial FLASH with nonlinear inverse reconstruction. Magnetic Resonance in Medicine, 69(2), 477-485. doi:10.1002/mrm.24276. [PubMan] : Uecker, M., Zhang, S., Voit, D., Merboldt, K. D., & Frahm, J. (2012). Real-time MRI: recent advances using radial FLASH. Imaging in Medicine, 4(4), 461-476. doi:10.2217/iim.12.32. [PubMan] : Joseph, A. A., Merboldt, K. D., Voit, D., Zhang, S., Uecker, M., Lotz, J., & Frahm, J. (2012). Real-time phase-contrast MRI of cardiovascular blood flow using undersampled radial fast low-angle shot and nonlinear inverse reconstruction. NMR in Biomedicine, 25(7), 917-924. doi:10.1002/nbm.1812. [PubMan] : Schätz, S., & Uecker, M. (2012). A multi-GPU programming library for real-time applications. In Y. Xiang, & I. Stojmenovic (Eds.), Algorithms and architectures for parallel processing. Proc. 12. Int. Conf., ICA3PP 2012, Pt. 1 (pp. 114-128). Berlin; Heidelberg: Springer. [PubMan] : Knoll, F., Clason, C., Bredies, K., Uecker, M., & Stollberger, R. (2012). Parallel imaging with nonlinear reconstruction using variational penalties. Magnetic Resonance in Medicine, 67(1), 34-41. doi:10.1002/mrm.22964. [PubMan] : Uecker, M., Sumpf, T., & Frahm, J. (2011). Reply to: MRI resolution enhancement: How useful are shifted images obtained by changing the demodulation frequency? Magnetic Resonance in Medicine, 66(6), 1511-1512. doi:10.1002/mrm.22989. [PubMan] : Merboldt, K. D., Uecker, M., Voit, D., & Frahm, J. (2011). Spatially encoded phase-contrast MRI-3D MRI movies of 1D and 2D structures at millisecond resolution. Magnetic Resonance in Medicine, 66(4), 950-956. doi:10.1002/mrm.23114. [PubMan] : Sumpf, T., Uecker, M., Boretius, S., & Frahm, J. (2011). Model-based nonlinear inverse reconstruction for T2 mapping using highly undersampled spin-echo MRI. Journal of Magnetic Resonance Imaging, 34(2), 420-428. doi:10.1002/jmri.22634. [PubMan] : Frahm, J., Uecker, M., Voit, D., & Zhang, S. (2011). Magnetresonanz-Tomografie in Echtzeit. In E. M. Neher (Ed.), Aus den Elfenbeintürmen der Wissenschaft 5. XLAB Science Festival. (pp. 98-110). Göttingen: Wallstein. [PubMan] : Frahm, J., & Uecker, M. (2011). Echtzeit-MRT: die Zweite. In C. Starck (Ed.), Jahrbuch der Göttinger Akademie der Wissenschaften (pp. 263-270). Berlin: de Gruyter. [PubMan] : Uecker, M., Zhang, S., Voit, D., Karaus, A., Merboldt, K. D., & Frahm, J. (2010). Real-time MRI at a resolution of 20 ms. NMR in Biomedicine, 23(8), 986-994. Retrieved from http://onlinelibrary.wiley.com/doi/10.1002/nbm.1585/pdf. [PubMan] : Zhang, S., Uecker, M., Voit, D., Merboldt, K. D., & Frahm, J. (2010). Real-time cardiovascular magnetic resonance at high temporal resolution: radial FLASH with nonlinear inverse reconstruction. Journal of Cardiovascular Magnetic Resonance, 12: 39. Retrieved from http://jcmr-online.com/content/pdf/1532-429X-12-39.pdf. [PubMan] : Uecker, M., Zhang, S., & Frahm, J. (2010). Nonlinear inverse reconstruction for real-time MRI of the human heart using undersampled radial FLASH. Magnetic Resonance in Medicine, 63(6), 1456-1462. Retrieved from http://www3.interscience.wiley.com/cgi-bin/fulltext/123453021/PDFSTART. [PubMan] : Block, K. T., Uecker, M., & Frahm, J. (2009). Model-based iterative reconstruction for radial fast spin-echo MRI. IEEE Transactions on Medical Imaging, 28(11), 1759-1769. Retrieved from http://ieeexplore.ieee.org/iel5/42/5297435/05067386.pdf?tp=&arnumber=5067386&isnumber=5297435. [PubMan] : Uecker, M., Karaus, A., & Frahm, J. (2009). Inverse reconstruction method for segmented multi-shot diffusion-weighted MRI with multiple coils. Magnetic Resonance in Medicine, 62(5), 1342-1348. Retrieved from http://www3.interscience.wiley.com/cgi-bin/fulltext/122608421/PDFSTART. [PubMan] : Uecker, M. (2009). Nonlinear reconstruction methods for parallel magnetic resonance imaging. PhD Thesis, Georg-August-Universität, Göttingen. [PubMan] : Uecker, M., Hohage, T., Block, T., & Frahm, J. (2008). Image reconstruction by regularized nonlinear inversion - Joint estimation of coil sensitivities and image content. Magnetic Resonance in Medicine, 60(3), 674-682. Retrieved from http://www3.interscience.wiley.com/cgi-bin/fulltext/121371072/HTMLSTART. [PubMan] : Block, K. T., Uecker, M., & Frahm, J. (2008). Suppression of MRI truncation artifacts using total variation constrained data extrapolation. International Journal of Biomedical Imaging, DOI: 10.1155/2008/184123. Retrieved from http://hindawi.com/RecentlyAcceptedArticlePDF.aspx?journal=IJBI&number=184123. [PubMan] : Block, K. T., Uecker, M., & Frahm, J. (2007). Undersampled radial MRI with multiple coils. Iterative image reconstruction using a total variation constraint. Magnetic Resonance in Medicine, 57(6), 1086-1098. Retrieved from http://www3.interscience.wiley.com/cgi-bin/fulltext/114274362/HTMLSTART. [PubMan]