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Machine Learning for Medical Image Reconstruction

Overview of attention for book
Cover of 'Machine Learning for Medical Image Reconstruction'

Table of Contents

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    Book Overview
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    Chapter 1 Rethinking the Optimization Process for Self-supervised Model-Driven MRI Reconstruction
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    Chapter 2 NPB-REC: Non-parametric Assessment of Uncertainty in Deep-Learning-Based MRI Reconstruction from Undersampled Data
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    Chapter 3 Adversarial Robustness of MR Image Reconstruction Under Realistic Perturbations
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    Chapter 4 High-Fidelity MRI Reconstruction with the Densely Connected Network Cascade and Feature Residual Data Consistency Priors
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    Chapter 5 Metal Artifact Correction MRI Using Multi-contrast Deep Neural Networks for Diagnosis of Degenerative Spinal Diseases
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    Chapter 6 Segmentation-Aware MRI Reconstruction
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    Chapter 7 MRI Reconstruction with Conditional Adversarial Transformers
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    Chapter 8 A Noise-Level-Aware Framework for PET Image Denoising
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    Chapter 9 DuDoTrans: Dual-Domain Transformer for Sparse-View CT Reconstruction
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    Chapter 10 Deep Denoising Network for X-Ray Fluoroscopic Image Sequences of Moving Objects
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    Chapter 11 PP-MPI: A Deep Plug-and-Play Prior for Magnetic Particle Imaging Reconstruction
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    Chapter 12 Learning While Acquisition: Towards Active Learning Framework for Beamforming in Ultrasound Imaging
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    Chapter 13 DPDudoNet: Deep-Prior Based Dual-Domain Network for Low-Dose Computed Tomography Reconstruction
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    Chapter 14 MTD-GAN: Multi-task Discriminator Based Generative Adversarial Networks for Low-Dose CT Denoising
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    Chapter 15 Uncertainty-Informed Bayesian PET Image Reconstruction Using a Deep Image Prior
Attention for Chapter 9: DuDoTrans: Dual-Domain Transformer for Sparse-View CT Reconstruction
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Chapter title
DuDoTrans: Dual-Domain Transformer for Sparse-View CT Reconstruction
Chapter number 9
Book title
Machine Learning for Medical Image Reconstruction
Published by
Springer, Cham, January 2022
DOI 10.1007/978-3-031-17247-2_9
Book ISBNs
978-3-03-117246-5, 978-3-03-117247-2
Authors

Wang, Ce, Shang, Kun, Zhang, Haimiao, Li, Qian, Zhou, S. Kevin

Mendeley readers

Mendeley readers

The data shown below were compiled from readership statistics for 7 Mendeley readers of this research output. Click here to see the associated Mendeley record.

Geographical breakdown

Country Count As %
Unknown 7 100%

Demographic breakdown

Readers by professional status Count As %
Student > Master 2 29%
Student > Ph. D. Student 1 14%
Student > Doctoral Student 1 14%
Other 1 14%
Unknown 2 29%
Readers by discipline Count As %
Engineering 4 57%
Mathematics 1 14%
Unknown 2 29%