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February 6, 2026Physics in Medicine and Biology1 citationsOpen Access

A novel projection data domain material decomposition method for dual-energy CT and its impact on the accuracy of attenuation values

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VHViktor HaaseFNF. NooKSKarl Stierstorfer

Key Points

  • To introduce and assess a new material decomposition method for improving attenuation value accuracy in dual-energy CT.
  • Developed a projection data domain material decomposition method with object-specific scatter correction.
  • Conducted comparisons against image-based material decomposition using ACR-CT phantom scans at varying energy levels.
  • Analyzed image quality for beam hardening artifacts and noise across different phantom positions.
  • Significant improvement in accuracy of attenuation values, particularly for low energy scans.
  • Reduction in beam hardening artifacts noted with the proposed method.
  • Lower and more uniform quantitative error across non-water inserts, especially in off-centered positions.

Abstract

Abstract Objective. Despite major advances in dual-energy CT, obtaining accurate attenuation values for quantitative applications remains a technical challenge. To address this topic, we introduce a novel projection data domain material decomposition method that is an extension of an approach we recently proposed for beam hardening correction in single energy CT.Approach. The proposed method employs object-specific scatter correction and an analytical energy response model. We compare its performance to image-based material decomposition on accuracy of attenuation values using the ACR-CT accreditation phantom, scanned with consecutive low and high energy axial scans in centered and off-centered positions. Accuracy is assessed across the five inserts, and the images are analyzed for beam hardening artifacts and noise. Additionally, we assess the usefulness of object-specific scatter correction, and we assess performance over conventional data domain material decomposition and for anthropomorphic abdomen phantom imaging. Main results. In the ACR phantom, the proposed method yielded a significant improvement in accuracy of the attenuation values, particularly at low energies (< 70keV), and an important reduction in beam hardening artifacts. While similarly high accuracy was achieved for water, quantitative error within the non-water inserts was lower and more uniform across the 30–140keV range, especially in the more challenging off-centered positioning of the phantom. Noise showed expected parabolic behavior, but with minimum at lower keV, which may be clinically advantageous. Object-specific scatter correction was shown to prevent major artifacts. Advantages over conventional data-domain decomposition clearly appeared when only a standard phantom is available to calibrate the latter. Lastly, the proposed method was shown to perform well, without any changes, in the more complex scenario of abdominal phantom imaging. Significance. This work demonstrates that data-based material decomposition using an analytical energy response model with object-specific scatter correction offers a promising pathway to improve accuracy of CT attenuation values.

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Cite This Study

Haase et al. (2026) studied this question.

synapsesocial.com/papers/698584f98f7c464f23008391https://doi.org/10.1088/1361-6560/ae4163
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