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Validation of Radiomics.jl library by using ovarian cancer images and possible integration in Slicer
Key Investigators
- Paolo Zaffino (Magna Graecia University of Catanzaro, Italy)
- Ciro Benito Raggio (Karlsruhe Institute of Technology, Germany)
- Francesca Spadeda (Karlsruhe Institute of Technology, Germany)
Project Description
Radiomics.jl is a pure Julia library for radiomics feature extraction.
Being a pretty new library, we want to test and validate it by using CT of ovarian cancer patients.
We would also like to investigate the possibility of calling it from the embedded Python in Slicer.
Of course any suggestion is more than welcome.
Objective
- Test Radiomics.jl on ovarian cancer CT
- Investigate the possibility of calling Radiomics.jl main function in Python
Approach and Plan
- Compare Radiomics.jl features with those computed by PyRadiomics (considered as the gold standard)
- Create a shared library and call it from Python
- Collect comments/suggestions
Progress and Next Steps
- Describe specific steps you have actually done.
Illustrations


Background and References
- Radiomics.jl official page: https://www.radiomicsjl.org
- Radiomics.jl source code: https://github.com/pzaffino/Radiomics.jl
- Pyradiomics documentation: https://pyradiomics.readthedocs.io
- Pyradiomics source code: https://github.com/AIM-Harvard/pyradiomics/tree/master