Related Experiment Video
Updated: Aug 5, 2026

05:11
Multimodal 3D Printing of Phantoms to Simulate Biological Tissue
Published on: January 11, 2020
A virtual imaging framework for three-dimensional quantitative optoacoustic tomography using stochastic numerical
Seonyeong Park1, Gangwon Jeong2, Umberto Villa3,4
1Department of Bioengineering, University of Illinois Urbana-Champaign, 1406 West Green Street, Urbana, 61801, IL, United States.
Photoacoustics
|July 30, 2026
Summary
A new virtual imaging framework enhances breast cancer diagnosis using quantitative optoacoustic tomography (qOAT). This tool aids in designing better imaging systems and developing computational methods for improved tumor visualization.
Area of Science:
- Biomedical Imaging
- Medical Physics
- Computational Imaging
Background:
- Optoacoustic tomography (OAT) shows promise for breast cancer diagnosis by visualizing tumor angiogenesis and hypoxia.
- Accurate image reconstruction in quantitative OAT (qOAT) is crucial for clinical applications and relies on measurement quality and imager design.
- Virtual imaging provides a cost-effective approach for evaluating system designs and developing computational methods.
Purpose of the Study:
- To present a comprehensive virtual imaging framework for breast qOAT.
- To extend a numerical breast phantom generator with variations in skin tone and inclusion of benign/malignant lesions.
- To enable end-to-end simulation for system design evaluation and computational method development.
Main Methods:
- Developed a virtual imaging framework for breast qOAT.
- Extended a stochastic numerical breast phantom (NBP) generator to include diverse skin tones and pathological lesions.
- Modeled transducer spatial and electro-acoustic impulse responses for end-to-end simulation.
- Made 1020 NBPs and measurement data publicly available.
Main Results:
- Demonstrated the framework's utility through a comparative case study of two system designs.
- Facilitated the creation of a diverse dataset of NBPs and simulated measurements.
- Provided a platform for advancing computational methods and optimizing system design.
Conclusions:
- The developed virtual imaging framework is a versatile tool for breast qOAT research.
- The publicly available dataset accelerates research in optoacoustic and optical imaging.
- The framework supports the optimization of imaging system designs and computational techniques for breast cancer diagnosis.

