Simulated 2D RASER MRI dataset for AI-driven artefact correction
收藏DataCite Commons2024-02-13 更新2024-07-13 收录
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# Simulated 2D RASER MRI dataset for AI-driven artefact correction
Data for AI-driven artefact correction in 2D RASER MRI images.
Random images are generated with basic shapes and image transformations. 30 projections of each image are taken, and undergo a RASER (Radiowave amplification by the stimulated emission of radiation) [1] simulation in MATLAB. The data is divided into 3 subsets:
- 10k_images.7z --> standard random images
- 10k_images_WithPump.zip --> projections experience parahydrogen pumping
- 1k_images_20TPI.zip --> high total population inversion (TPI) variations of +/- 20%
## File format
Folder structure: ```{subset}/image{#}/{TPI value}/{filename.csv}```
Each folder contains the following files:
- A(0).csv --> Signal amplitude
- d(0).csv --> TPI evolution
- meta.csv --> Meta information
- output(Real and Imag).csv --> Simulated RASER signal
- Phi(0).csv --> Signal phase
## Data loading
Scripts for data loading are provided with the code at [github.com/mobecks/raser-mri-ai](https://github.com/mobecks/raser-mri-ai).
## References
[1] Sören Lehmkuhl et al., RASER MRI: Magnetic resonance images formed spontaneously exploiting cooperative nonlinear interaction.Sci. Adv.8,eabp8483(2022). DOI:10.1126/sciadv.abp8483
提供机构:
Karlsruhe Institute of Technology
创建时间:
2024-02-13



