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Single-Pulse X-ray Acoustic Computed Tomographic Imaging for Precision Radiation Therapy
Gilberto Gonzalez1, Kiana Prather2, Prabodh Kumar Pandey3
1Department of Radiation Oncology, University of Oklahoma Health Sciences Center, Oklahoma City, Oklahoma.
Advances in Radiation Oncology
|June 19, 2023
Summary
This study introduces single-pulse x-ray-induced acoustic computed tomography (XACT) for real-time radiation dose imaging in cancer therapy. This breakthrough enables precise, immediate monitoring of radiation doses delivered to tumors during treatment.
Area of Science:
- Medical Physics
- Biomedical Imaging
- Radiation Oncology
Background:
- High-precision radiation therapy requires accurate dose verification.
- Current methods rely on phantom simulations, lacking real-time, in-tumor dose monitoring.
- X-ray-induced acoustic computed tomography (XACT) shows promise for imaging radiation dose within tumors.
Purpose of the Study:
- To demonstrate the feasibility of single-pulse XACT for real-time radiation dose imaging.
- To overcome the limitations of previous XACT systems requiring extensive signal averaging.
- To achieve sub-mGy sensitivity from a single x-ray pulse.
Main Methods:
- Utilized an acoustic transducer immersed in a homogeneous medium to detect radiation-induced pressure waves.
- Employed tomographic reconstruction from signals acquired at various angles.
- Enhanced signal-to-noise ratio (SNR) using two-stage amplification and bandpass filtering.
Main Results:
- Achieved a satisfactory SNR in single-pulse mode, meeting the Rose criterion.
- Successfully reconstructed 2D dose images from homogeneous media using single-pulse data.
- Demonstrated sub-mGy sensitivity with a single 4 µs x-ray pulse from a clinical linear accelerator.
Conclusions:
- Single-pulse XACT imaging overcomes SNR limitations and the need for signal averaging.
- This technique offers significant potential for personalized, real-time dose monitoring during radiation therapy.
- Enables precise tracking of radiation dose for each individual pulse delivered to the patient.
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