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    Area of Science:

    • Medical Imaging
    • Physics
    • Biomedical Engineering

    Background:

    • X-ray computed tomography (CT) provides essential 3D diagnostic information.
    • Grating-based dark-field X-ray imaging offers microstructural insights beyond conventional CT.
    • Clinical application of dark-field CT is limited by interferometer sensitivity to vibrations.

    Purpose of the Study:

    • To develop a processing pipeline for clinical dark-field CT prototypes.
    • To mitigate vibration artifacts in human-sized dark-field CT imaging.
    • To enable large field-of-view dark-field CT for clinical use.

    Main Methods:

    • A novel processing and reconstruction pipeline was developed for a clinical dark-field CT prototype.
    • Spatially and temporally variable vibrations were identified using air reference scans.
    • Correlations from reference scans were applied to sample scans to mitigate vibration effects.
    • The method allows for the separation of fluctuation and sample information without requiring sample-free detector areas.

    Main Results:

    • The processing pipeline effectively mitigates vibration artifacts in dark-field CT.
    • Reconstructions of human-scale objects, including an anthropomorphic thorax phantom, were successfully achieved.
    • The technique allows for the reconstruction of samples of arbitrary dimensions without artifacts.
    • The method eliminates the need for sample-free detector areas, simplifying the process.

    Conclusions:

    • The proposed processing pipeline enables robust dark-field CT imaging for human-scale objects.
    • This advancement overcomes previous limitations in clinical dark-field CT applications.
    • The technique holds significant potential for improving medical diagnosis through enhanced microstructural imaging.