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Research ArticleARTIFICIAL INTELLIGENCE

Ultra-High-Resolution Photon-Counting-Detector CT with a Dedicated Denoising Convolutional Neural Network for Enhanced Temporal Bone Imaging

Shaojie Chang, John C. Benson, John I. Lane, Michael R. Bruesewitz, Joseph R. Swicklik, Jamison E. Thorne, Emily K. Koons, Matthew L. Carlson, Cynthia H. McCollough and Shuai Leng
American Journal of Neuroradiology May 2025, DOI: https://doi.org/10.3174/ajnr.A8572
Shaojie Chang
aFrom the Department of Radiology (S.C., J.C.B., J.I.L., M.R.B., J.R.S., J.E.T., E.K.K., M.L.C., C.H.M., S.L.), Mayo Clinic, Rochester, Minnesota
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John C. Benson
aFrom the Department of Radiology (S.C., J.C.B., J.I.L., M.R.B., J.R.S., J.E.T., E.K.K., M.L.C., C.H.M., S.L.), Mayo Clinic, Rochester, Minnesota
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  • ORCID record for John C. Benson
John I. Lane
aFrom the Department of Radiology (S.C., J.C.B., J.I.L., M.R.B., J.R.S., J.E.T., E.K.K., M.L.C., C.H.M., S.L.), Mayo Clinic, Rochester, Minnesota
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Michael R. Bruesewitz
aFrom the Department of Radiology (S.C., J.C.B., J.I.L., M.R.B., J.R.S., J.E.T., E.K.K., M.L.C., C.H.M., S.L.), Mayo Clinic, Rochester, Minnesota
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  • ORCID record for Michael R. Bruesewitz
Joseph R. Swicklik
aFrom the Department of Radiology (S.C., J.C.B., J.I.L., M.R.B., J.R.S., J.E.T., E.K.K., M.L.C., C.H.M., S.L.), Mayo Clinic, Rochester, Minnesota
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Jamison E. Thorne
aFrom the Department of Radiology (S.C., J.C.B., J.I.L., M.R.B., J.R.S., J.E.T., E.K.K., M.L.C., C.H.M., S.L.), Mayo Clinic, Rochester, Minnesota
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  • ORCID record for Jamison E. Thorne
Emily K. Koons
aFrom the Department of Radiology (S.C., J.C.B., J.I.L., M.R.B., J.R.S., J.E.T., E.K.K., M.L.C., C.H.M., S.L.), Mayo Clinic, Rochester, Minnesota
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Matthew L. Carlson
aFrom the Department of Radiology (S.C., J.C.B., J.I.L., M.R.B., J.R.S., J.E.T., E.K.K., M.L.C., C.H.M., S.L.), Mayo Clinic, Rochester, Minnesota
bDepartment of Otolaryngology–Head and Neck Surgery (M.L.C.), Mayo Clinic, Rochester, Minnesota
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  • ORCID record for Matthew L. Carlson
Cynthia H. McCollough
aFrom the Department of Radiology (S.C., J.C.B., J.I.L., M.R.B., J.R.S., J.E.T., E.K.K., M.L.C., C.H.M., S.L.), Mayo Clinic, Rochester, Minnesota
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Shuai Leng
aFrom the Department of Radiology (S.C., J.C.B., J.I.L., M.R.B., J.R.S., J.E.T., E.K.K., M.L.C., C.H.M., S.L.), Mayo Clinic, Rochester, Minnesota
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Graphical Abstract

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Abstract

BACKGROUND AND PURPOSE: Ultra-high-resolution (UHR) photon-counting-detector (PCD) CT improves image resolution but increases noise, necessitating the use of smoother reconstruction kernels that reduce resolution below the 0.125-mm maximum spatial resolution. A denoising convolutional neural network (CNN) was developed to reduce noise in images reconstructed with the available sharpest reconstruction kernel while preserving resolution for enhanced temporal bone visualization to address this issue.

MATERIALS AND METHODS: With institutional review board approval, the CNN was trained on 6 patient cases of clinical temporal bone imaging (1885 images) and tested on 20 independent cases using a dual-source PCD-CT (NAEOTOM Alpha). Images were reconstructed using quantum iterative reconstruction at strength 3 (QIR3) with both a clinical routine kernel (Hr84) and the sharpest available head kernel (Hr96). The CNN was applied to images reconstructed with Hr96 and QIR1 kernel. For each case, three series of images (Hr84-QIR3, Hr96-QIR3, and Hr96-CNN) were randomized for review by 2 neuroradiologists assessing the overall quality and delineating the modiolus, stapes footplate, and incudomallear joint.

RESULTS: The CNN reduced noise by 80% compared with Hr96-QIR3 and by 50% relative to Hr84-QIR3, while maintaining high resolution. Compared with the conventional method at the same kernel (Hr96-QIR3), Hr96-CNN significantly decreased image noise (from 204.63 to 47.35 HU) and improved its structural similarity index (from 0.72 to 0.99). Hr96-CNN images ranked higher than Hr84-QIR3 and Hr96-QIR3 in overall quality (P < .001). Readers preferred Hr96-CNN for all 3 structures.

CONCLUSIONS: The proposed CNN significantly reduced image noise in UHR PCD-CT, enabling the use of the sharpest kernel. This combination greatly enhanced diagnostic image quality and anatomic visualization.

ABBREVIATIONS:

ACR
American College of Radiology
CNN
convolutional neural network
IR
iterative reconstruction
MTFc
contrast-dependent modulation transfer function
NPS
noise power spectrum
PCD
photon-counting-detector
QIR
quantum iterative reconstruction
RED-CNN
residual encoder-decoder convolutional neural network
SSIM
structural similarity index
UHR
ultra-high-resolution

Footnotes

  • Research reported in this work was supported by the National Institutes of Health under award No. R01 EB028590.

  • The content is solely the responsibility of the authors and does not necessarily represent the official views of the National Institutes of Health.

  • Disclosure forms provided by the authors are available with the full text and PDF of this article at www.ajnr.org.

  • © 2025 by American Journal of Neuroradiology
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Cite this article
Shaojie Chang, John C. Benson, John I. Lane, Michael R. Bruesewitz, Joseph R. Swicklik, Jamison E. Thorne, Emily K. Koons, Matthew L. Carlson, Cynthia H. McCollough, Shuai Leng
Ultra-High-Resolution Photon-Counting-Detector CT with a Dedicated Denoising Convolutional Neural Network for Enhanced Temporal Bone Imaging
American Journal of Neuroradiology May 2025, DOI: 10.3174/ajnr.A8572

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AI-Enhanced Photon-Counting CT of Temporal Bone
Shaojie Chang, John C. Benson, John I. Lane, Michael R. Bruesewitz, Joseph R. Swicklik, Jamison E. Thorne, Emily K. Koons, Matthew L. Carlson, Cynthia H. McCollough, Shuai Leng
American Journal of Neuroradiology May 2025, DOI: 10.3174/ajnr.A8572
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