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Experimental and numerical studies on kV scattered x-ray imaging for real-time image guidance in radiation therapy. | LitMetric

Experimental and numerical studies on kV scattered x-ray imaging for real-time image guidance in radiation therapy.

Phys Med Biol

Innovative Technology Of Radiotherapy Computations and Hardware (iTORCH) Laboratory, Department of Radiation Oncology, University of Texas Southwestern Medical Center, Dallas, TX, 75235, United States of America.

Published: February 2021

AI Article Synopsis

  • Motion management is vital for improving the accuracy of image guided radiotherapy in lung cancer treatment, particularly through a new marker-less method using kV scattered x-ray photons.
  • This research showcased the use of photon counting detection and simulations to assess the effectiveness of this imaging technique, showing a strong correlation between the corrected x-ray scattering image and the actual Compton attenuation coefficient.
  • Additionally, ray-tracing analysis confirmed that factors like distance and collimator height significantly influence image resolution, indicating the potential for enhanced real-time imaging in radiotherapy.

Article Abstract

Motion management is a critical component of image guided radiotherapy for lung cancer. We previously proposed a scheme using kV scattered x-ray photons for marker-less real-time image guidance in lung cancer radiotherapy. This study reports our recent progress using the photon counting detection technique to demonstrate potential feasibility of this method and using Monte Carlo (MC) simulations and ray-tracing calculations to characterize the performance. In our scheme, a thin slice of x-ray beam was directed to the target and we measured the outgoing scattered photons using a photon counting detector with a parallel-hole collimator to establish the correspondence between detector pixels and scatter positions. Image corrections of geometry, beam attenuation and scattering angle were performed to convert the raw image to the actual image of Compton attenuation coefficient. We set up a MC simulation system using an in-house developed GPU-based MC package modeling the image formation process. We also performed ray-tracing calculations to investigate the impacts of imaging system geometry on resulting image resolution. The experiment demonstrated feasibility of using a photon counting detector to measure scattered x-ray photons and generate the proposed scattered x-ray image. After correction, x-ray scattering image intensity and Compton scattering attenuation coefficient were linearly related, with R greater than 0.9. Contrast to noise ratios of different objects were improved and the values in experimental results and MC simulation results agreed with each other. Ray-tracing calculations revealed the dependence of image resolution on imaging geometry. The image resolution increases with reduced source to object distance and increased collimator height. The study demonstrated potential feasibility of using scattered x-ray imaging as a real-time image guidance method in radiation therapy.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC8283910PMC
http://dx.doi.org/10.1088/1361-6560/abd66cDOI Listing

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