Dual Domain Swin Transformer based Reconstruction method for Sparse-View Computed Tomography
A new sparse-view parallel beam computed tomography reconstruction method is proposed that exploits the restoration capabilities of Transformer networks, in particular the Swin Transformer-based image reconstruction network SwinIR. Our method comprises three key blocks: sinogram upsampling via line...
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NDT.net
2025-02-01
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Series: | e-Journal of Nondestructive Testing |
Online Access: | https://www.ndt.net/search/docs.php3?id=30751 |
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author | Jonas Van der Rauwelaert Caroline Bossuyt Jan Sijbers |
author_facet | Jonas Van der Rauwelaert Caroline Bossuyt Jan Sijbers |
author_sort | Jonas Van der Rauwelaert |
collection | DOAJ |
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A new sparse-view parallel beam computed tomography reconstruction method is proposed that exploits the restoration capabilities of Transformer networks, in particular the Swin Transformer-based image reconstruction network SwinIR. Our method comprises three key blocks: sinogram upsampling via linear interpolation, initial reconstruction using deep learning in both domains, and residual refinement. Two architectures are tested: a long one using neural networks in both domains of the residual refinement block and a short one using a network exclusively in the sinogram domain. Each method is tested with SwinIR and UNet, resulting in four variants, all of which outperform traditional methods like FBP and SIRT in terms of PSNR and SSIM. The short architecture using SwinIR achieves the best results, with a training and computation time smaller than the SwinIR-based long architecture but larger than both U-Net-based variants.
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format | Article |
id | doaj-art-f7f4c9530de549d5b0d8aaea7c0c4009 |
institution | Kabale University |
issn | 1435-4934 |
language | deu |
publishDate | 2025-02-01 |
publisher | NDT.net |
record_format | Article |
series | e-Journal of Nondestructive Testing |
spelling | doaj-art-f7f4c9530de549d5b0d8aaea7c0c40092025-02-06T10:48:19ZdeuNDT.nete-Journal of Nondestructive Testing1435-49342025-02-0130210.58286/30751Dual Domain Swin Transformer based Reconstruction method for Sparse-View Computed TomographyJonas Van der RauwelaertCaroline BossuytJan Sijbershttps://orcid.org/0000-0003-4225-2487 A new sparse-view parallel beam computed tomography reconstruction method is proposed that exploits the restoration capabilities of Transformer networks, in particular the Swin Transformer-based image reconstruction network SwinIR. Our method comprises three key blocks: sinogram upsampling via linear interpolation, initial reconstruction using deep learning in both domains, and residual refinement. Two architectures are tested: a long one using neural networks in both domains of the residual refinement block and a short one using a network exclusively in the sinogram domain. Each method is tested with SwinIR and UNet, resulting in four variants, all of which outperform traditional methods like FBP and SIRT in terms of PSNR and SSIM. The short architecture using SwinIR achieves the best results, with a training and computation time smaller than the SwinIR-based long architecture but larger than both U-Net-based variants. https://www.ndt.net/search/docs.php3?id=30751 |
spellingShingle | Jonas Van der Rauwelaert Caroline Bossuyt Jan Sijbers Dual Domain Swin Transformer based Reconstruction method for Sparse-View Computed Tomography e-Journal of Nondestructive Testing |
title | Dual Domain Swin Transformer based Reconstruction method for Sparse-View Computed Tomography |
title_full | Dual Domain Swin Transformer based Reconstruction method for Sparse-View Computed Tomography |
title_fullStr | Dual Domain Swin Transformer based Reconstruction method for Sparse-View Computed Tomography |
title_full_unstemmed | Dual Domain Swin Transformer based Reconstruction method for Sparse-View Computed Tomography |
title_short | Dual Domain Swin Transformer based Reconstruction method for Sparse-View Computed Tomography |
title_sort | dual domain swin transformer based reconstruction method for sparse view computed tomography |
url | https://www.ndt.net/search/docs.php3?id=30751 |
work_keys_str_mv | AT jonasvanderrauwelaert dualdomainswintransformerbasedreconstructionmethodforsparseviewcomputedtomography AT carolinebossuyt dualdomainswintransformerbasedreconstructionmethodforsparseviewcomputedtomography AT jansijbers dualdomainswintransformerbasedreconstructionmethodforsparseviewcomputedtomography |