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Development of an adjustable dynamic phantom for testing deviceless motion correction algorithm in PET
Christian Kühnel1, Tabea Nikola Schmidt1, Leonie Schreiber1
1Clinic for Nuclear Medicine, University Hospital Jena, Jena, Thuringia, Germany.
Medical Physics
|July 22, 2026
Summary
A new dynamic phantom was developed to test deviceless motion correction algorithms (MCA) in PET imaging. This system quantifies MCA
Area of Science:
- Medical Imaging
- Nuclear Medicine
- Quantitative PET Imaging
Background:
- Respiratory motion degrades PET image quality, causing blurring and inaccurate quantification.
- Deviceless motion correction algorithms (MCA) offer a solution but require robust in vivo validation, which is challenging.
- Existing validation methods for MCA in PET are limited.
Purpose of the Study:
- To develop and validate an adjustable dynamic phantom with fillable spheres.
- To enable quantitative assessment of deviceless PET motion correction algorithms.
- To provide a ground-truth framework for MCA evaluation.
Main Methods:
- A microprocessor-controlled, two-axis dynamic phantom was engineered to simulate various respiratory motion patterns (craniocaudal, ventrodorsal, diagonal).
- Fillable 18F-FDG spheres of different volumes (4, 1, 0.25 mL) were imaged with and without MCA on a PET/CT scanner.
- Volumes, activities, and recovery coefficients (RCs) were extracted using two isocontour methods to assess MCA performance.
Main Results:
- Uncorrected scans showed significant volumetric overestimation, particularly for smaller spheres (up to 509%).
- MCA effectively reduced motion-induced distortions, improving accuracy for 1 mL spheres (e.g., from +166% to +82% for diagonal motion).
- Activity quantification was largely preserved with one isocontour method (IC0.1), while RCs showed partial improvement with MCA but did not reach static levels.
Conclusions:
- The developed dynamic phantom offers a reproducible method for evaluating deviceless PET motion correction.
- MCA successfully mitigates motion-induced blurring and volumetric errors, although performance varies with sphere size and motion direction.
- This system facilitates systematic benchmarking and optimization of PET motion correction technologies.

