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MRIRecon

This is a collection of codes and demos developed by ICON Lab @ Bilkent University.

You are free to use, modify, and distribute any of the tools provided. However, please acknowledge this repository and cite the corresponding publications appropriately.

The following is a short description of the hosted toolboxes. Click each header to get directed to the corresponding repository.

Toolbox for data-driven parameter tuning strategy to automate hybrid PI-CS reconstructions. This technique is introduced in the following paper:

Ilicak E., Saritas E. U., Çukur T., "Automated Parameter Selection for Accelerated MRI Reconstruction via Low-Rank Modeling of Local k-Space Neighborhoods", Zeitschrift für Medizinische Physik, 2022. doi.org/10.1016/j.zemedi.2022.02.002

Toolbox for pGAN and cGAN deep networks. This technique is introduced in the following paper:

Dar S.U.H., Yurt M., Karacan L., Erdem A., Erdem E., Çukur T., "Image synthesis in multi-contrast MRI with conditional generative adversarial networks", IEEE Transactions on Medical Imaging, 2019. doi: 10.1109/TMI.2019.2901750

Toolbox for spatially informed voxelwise modeling. This technique is introduced in the following paper:

Çelik E., Dar S.U.H., Yılmaz Ö., Keleş Ü., Çukur T., (2019). "Spatially informed voxelwise modeling for naturalistic fMRI experiments. NeuroImage", 186, 741-757. doi: 10.1016/j.neuroimage.2018.11.044

Toolbox for self-tuning reconstruction of multi-coil multi-acquisition data using projection onto epigraph sets. This technique is introduced in the following paper:

Shahdloo M., Ilicak E., Tofighi M., Saritas E. U., Çetin A. E., and Çukur T., "Projection onto Epigraph Sets for Rapid Self-Tuning Compressed Sensing MRI", IEEE Transactions on Medical Imaging, 2018. doi: 10.1109/TMI.2018.2885599

Toolbox for reconstruction of multi-coil multi-acquisition data using calibration over tensors. This technique is introduced in the following paper:

Biyik E., Ilicak E., Cukur T. "Reconstruction by calibration over tensors for multi-coil multi-acquisition balanced SSFP imaging", Magnetic Resonance in Medicine, 2017. doi: 10.1002/mrm.26902.

Toolbox for generation of segregated sampling patterns for accelerated multi-acquisition MRI. This technique is introduced in the following paper:

Senel L. K., Kilic T., Gungor A., Kopanoglu E., Guven H. E., Saritas E. U., Koc A., Çukur T. "Statistically segregated k-space sampling for accelerating multiple-acquisition MRI". arXiv:1710.00532, 2017.

(c) ICON Lab 2022