Literature DB >> 28533050

Dual-core steered non-rigid registration for multi-modal images via bi-directional image synthesis.

Xiaohuan Cao1, Jianhua Yang2, Yaozong Gao3, Yanrong Guo4, Guorong Wu4, Dinggang Shen5.   

Abstract

In prostate cancer radiotherapy, computed tomography (CT) is widely used for dose planning purposes. However, because CT has low soft tissue contrast, it makes manual contouring difficult for major pelvic organs. In contrast, magnetic resonance imaging (MRI) provides high soft tissue contrast, which makes it ideal for accurate manual contouring. Therefore, the contouring accuracy on CT can be significantly improved if the contours in MRI can be mapped to CT domain by registering MRI with CT of the same subject, which would eventually lead to high treatment efficacy. In this paper, we propose a bi-directional image synthesis based approach for MRI-to-CT pelvic image registration. First, we use patch-wise random forest with auto-context model to learn the appearance mapping from CT to MRI domain, and then vice versa. Consequently, we can synthesize a pseudo-MRI whose anatomical structures are exactly same with CT but with MRI-like appearance, and a pseudo-CT as well. Then, our MRI-to-CT registration can be steered in a dual manner, by simultaneously estimating two deformation pathways: 1) one from the pseudo-CT to the actual CT and 2) another from actual MRI to the pseudo-MRI. Next, a dual-core deformation fusion framework is developed to iteratively and effectively combine these two registration pathways by using complementary information from both modalities. Experiments on a dataset with real pelvic CT and MRI have shown improved registration performance of the proposed method by comparing it to the conventional registration methods, thus indicating its high potential of translation to the routine radiation therapy.
Copyright © 2017 Elsevier B.V. All rights reserved.

Entities:  

Keywords:  Image synthesis; Multi-modality; Non-rigid registration; Radiation therapy

Mesh:

Year:  2017        PMID: 28533050      PMCID: PMC5896773          DOI: 10.1016/j.media.2017.05.004

Source DB:  PubMed          Journal:  Med Image Anal        ISSN: 1361-8415            Impact factor:   8.545


  44 in total

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Authors:  Stefan Klein; Uulke A van der Heide; Irene M Lips; Marco van Vulpen; Marius Staring; Josien P W Pluim
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3.  Multi-modal volume registration by maximization of mutual information.

Authors:  W M Wells; P Viola; H Atsumi; S Nakajima; R Kikinis
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4.  Multimodal image coregistration and partitioning--a unified framework.

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Journal:  IEEE Trans Med Imaging       Date:  1997-04       Impact factor: 10.048

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  18 in total

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4.  Non-rigid Brain MRI Registration Using Two-stage Deep Perceptive Networks.

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5.  Synthesized b0 for diffusion distortion correction (Synb0-DisCo).

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6.  Imaging study of pseudo-CT images of superposed ultrasound deformation fields acquired in radiotherapy based on step-by-step local registration.

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7.  Multi-Hypergraph Learning for Incomplete Multimodality Data.

Authors:  Mingxia Liu; Yue Gao; Pew-Thian Yap; Dinggang Shen
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8.  Learning-based deformable registration for infant MRI by integrating random forest with auto-context model.

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9.  Joint Craniomaxillofacial Bone Segmentation and Landmark Digitization by Context-Guided Fully Convolutional Networks.

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10.  Landmark-based deep multi-instance learning for brain disease diagnosis.

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Journal:  Med Image Anal       Date:  2017-10-27       Impact factor: 8.545

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