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Validation of deep learning-based CT image reconstruction for treatment planning
Keisuke Yasui1, Yasunori Saito2, Azumi Ito3
1Division of Medical Physics, School of Medical Sciences, Fujita Health University, 1-98 Dengakugakubo, Kutsukake-Cho, Toyoake, Aichi, 470-1192, Japan. k-yasui@fujita-hu.ac.jp.
Scientific Reports
|September 18, 2023
Summary
Deep learning-based CT image reconstruction (DLR) offers improved image quality in radiotherapy. DLR demonstrates stable CT values and reduced noise, especially at lower doses, making it valuable for treatment planning.
Area of Science:
- Medical Imaging
- Radiotherapy Physics
- Artificial Intelligence in Medicine
Background:
- Deep learning-based CT image reconstruction (DLR) is an advanced technique for generating CT images.
- Evaluating novel reconstruction methods is crucial for optimizing radiotherapy treatment planning.
Purpose of the Study:
- To assess the utility of DLR in radiotherapy applications.
- To compare DLR with hybrid iterative reconstruction (H-IR) regarding image quality metrics.
Main Methods:
- CT data acquired using a large-bore CT system and an electron density phantom.
- Comparison of CT values, image noise, and CT value-to-electron density conversion tables between DLR and H-IR across various radiation doses.
- Evaluation of three DLR reconstruction strengths: Mild, Standard, and Strong.
Main Results:
- DLR exhibited less variation in CT values and lower image noise compared to H-IR, particularly in low-dose regions.
- CT value differences between DLR and H-IR were minimal (under 10 HU) at doses of 100 mAs and above.
- Higher DLR reconstruction strengths (Standard, Strong) showed significant noise reduction, surpassing the Mild setting.
Conclusions:
- DLR provides stable CT values and low image noise for diverse materials, even at reduced radiation doses.
- The Standard and Strong DLR settings offer substantial noise reduction, indicating their clinical relevance.
- DLR is a promising tool for enhancing treatment planning in radiotherapy utilizing large-bore CT systems.

