TMI Watch IEEE Transactions on Medical Imaging metadata monitor

Volume 41, Issue 10

34 articles collected from IEEE Xplore web pages.

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Onat Dalmaz, Mahmut Yurt, Tolga Çukur

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Generative adversarial models with convolutional neural network (CNN) backbones have recently been established as state-of-the-art in numerous medical image synthesis tasks. However, CNNs are designed to perform local processing with compact filters, and this inductive bias compromises learning of contextual features. Here, we propose a novel generative adversarial approach for medical image synthesis, ResViT, that leverages the contextual sensitivity of vision transformers along with the precision of convolution operators and realism of adversarial learning. ResViT’s generator employs a central bottleneck comprising novel aggregated residual transformer (ART) blocks that synergistically combine residual convolutional and transformer modules. Residual connections in ART blocks promote diversity in captured representations, while a channel compression module distills task-relevant information. A weight sharing strategy is introduced among ART blocks to mitigate computational burden. A unified implementation is introduced to avoid the need to rebuild separate synthesis models for varying source-target modality configurations. Comprehensive demonstrations are performed for synthesizing missing sequences in multi-contrast MRI, and CT images from MRI. Our results indicate superiority of ResViT against competing CNN- and transformer-based methods in terms of qualitative observations and quantitative metrics.

中文

中文摘要翻译待生成

Author Info / 作者信息
Onat Dalmaz Department of Electrical and Electronics Engineering, National Magnetic Resonance Research Center (UMRAM), Bilkent University, Ankara, Turkey 机构中文翻译待生成或 IEEE 未提供机构
Mahmut Yurt Department of Electrical and Electronics Engineering, National Magnetic Resonance Research Center (UMRAM), Bilkent University, Ankara, Turkey 机构中文翻译待生成或 IEEE 未提供机构
Tolga Çukur Department of Electrical and Electronics Engineering, Neuroscience Program, Sabuncu Brain Research Center, and the National Magnetic Resonance Research Center (UMRAM), Bilkent University, Ankara, Turkey 机构中文翻译待生成或 IEEE 未提供机构

Rencheng Zheng, Qidong Wang, Shuangzhi Lv, Cuiping Li, Chengyan Wang, Weibo Chen, He Wang

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Objective: Accurate segmentation of liver tumors, which could help physicians make appropriate treatment decisions and assess the effectiveness of surgical treatment, is crucial for the clinical diagnosis of liver cancer. In this study, we propose a 4-dimensional (4D) deep learning model based on 3D convolution and convolutional long short-term memory (C-LSTM) for hepatocellular carcinoma (HCC) le...

中文

中文摘要翻译待生成

Author Info / 作者信息
Rencheng Zheng Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构
Qidong Wang Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构
Shuangzhi Lv Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构
Cuiping Li Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构
Chengyan Wang Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构
Weibo Chen Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构
He Wang Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构

Qiushi Yang, Xiaoqing Guo, Zhen Chen, Peter Y. M. Woo, Yixuan Yuan

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Multi-modal Magnetic Resonance Imaging (MRI) can provide complementary information for automatic brain tumor segmentation, which is crucial for diagnosis and prognosis. While missing modality data is common in clinical practice and it can result in the collapse of most previous methods relying on complete modality data. Current state-of-the-art approaches cope with the situations of missing modali...

中文

中文摘要翻译待生成

Author Info / 作者信息
Qiushi Yang Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构
Xiaoqing Guo Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构
Zhen Chen Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构
Peter Y. M. Woo Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构
Yixuan Yuan Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构

Zhanyu Wang, Hongwei Han, Lei Wang, Xiu Li, Luping Zhou

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Automated radiographic report generation is challenging in at least two aspects. First, medical images are very similar to each other and the visual differences of clinic importance are often fine-grained. Second, the disease-related words may be submerged by many similar sentences describing the common content of the images, causing the abnormal to be misinterpreted as the normal in the worst cas...

中文

中文摘要翻译待生成

Author Info / 作者信息
Zhanyu Wang Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构
Hongwei Han Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构
Lei Wang Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构
Xiu Li Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构
Luping Zhou Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构

Nathan Painchaud, Nicolas Duchateau, Olivier Bernard, Pierre-Marc Jodoin

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Convolutional neural networks (CNN) have demonstrated their ability to segment 2D cardiac ultrasound images. However, despite recent successes according to which the intra-observer variability on end-diastole and end-systole images has been reached, CNNs still struggle to leverage temporal information to provide accurate and temporally consistent segmentation maps across the whole cycle. Such cons...

中文

中文摘要翻译待生成

Author Info / 作者信息
Nathan Painchaud Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构
Nicolas Duchateau Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构
Olivier Bernard Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构
Pierre-Marc Jodoin Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构

Ke Yan, Jinzheng Cai, Dakai Jin, Shun Miao, Dazhou Guo, Adam P. Harrison, Youbao Tang, Jing Xiao

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Radiological images such as computed tomography (CT) and X-rays render anatomy with intrinsic structures. Being able to reliably locate the same anatomical structure across varying images is a fundamental task in medical image analysis. In principle it is possible to use landmark detection or semantic segmentation for this task, but to work well these require large numbers of labeled data for each...

中文

中文摘要翻译待生成

Author Info / 作者信息
Ke Yan Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构
Jinzheng Cai Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构
Dakai Jin Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构
Shun Miao Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构
Dazhou Guo Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构
Adam P. Harrison Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构
Youbao Tang Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构
Jing Xiao Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构

Jianjia Zhang, Luping Zhou, Lei Wang, Mengting Liu, Dinggang Shen

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Constructing and analyzing functional brain networks (FBN) has become a promising approach to brain disorder classification. However, the conventional successive construct-and-analyze process would limit the performance due to the lack of interactions and adaptivity among the subtasks in the process. Recently, Transformer has demonstrated remarkable performance in various tasks, attributing to its...

中文

中文摘要翻译待生成

Author Info / 作者信息
Jianjia Zhang Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构
Luping Zhou Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构
Lei Wang Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构
Mengting Liu Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构
Dinggang Shen Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构

Huihui Fang, Fei Li, Huazhu Fu, Xu Sun, Xingxing Cao, Fengbin Lin, Jaemin Son, Sunho Kim

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Age-related macular degeneration (AMD) is the leading cause of visual impairment among elderly in the world. Early detection of AMD is of great importance, as the vision loss caused by this disease is irreversible and permanent. Color fundus photography is the most cost-effective imaging modality to screen for retinal disorders. Cutting edge deep learning based algorithms have been recently develo...

中文

中文摘要翻译待生成

Author Info / 作者信息
Huihui Fang Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构
Fei Li Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构
Huazhu Fu Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构
Xu Sun Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构
Xingxing Cao Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构
Fengbin Lin Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构
Jaemin Son Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构
Sunho Kim Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构

Jinxin Lv, Zhiwei Wang, Hongkuan Shi, Haobo Zhang, Sheng Wang, Yilang Wang, Qiang Li

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Registration of brain MRI images requires to solve a deformation field, which is extremely difficult in aligning intricate brain tissues, e.g., subcortical nuclei, etc. Existing efforts resort to decomposing the target deformation field into intermediate sub-fields with either tiny motions, i.e., progressive registration stage by stage, or lower resolutions, i.e., coarse-to-fine estimation of the ...

中文

中文摘要翻译待生成

Author Info / 作者信息
Jinxin Lv Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构
Zhiwei Wang Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构
Hongkuan Shi Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构
Haobo Zhang Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构
Sheng Wang Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构
Yilang Wang Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构
Qiang Li Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构

Yu Li, Xin Zhang, Jingxin Nie, Guowei Zhang, Ruiyan Fang, Xiangmin Xu, Zhengwang Wu, Dan Hu

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Infancy is a critical period for the human brain development, and brain age is one of the indices for the brain development status associated with neuroimaging data. The difference between the predicted age based on neuroimaging and the chronological age can provide an important early indicator of deviation from the normal developmental trajectory. In this study, we utilize the Graph Convolutional...

中文

中文摘要翻译待生成

Author Info / 作者信息
Yu Li Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构
Xin Zhang Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构
Jingxin Nie Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构
Guowei Zhang Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构
Ruiyan Fang Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构
Xiangmin Xu Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构
Zhengwang Wu Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构
Dan Hu Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构

David Zimmerer, Peter M. Full, Fabian Isensee, Paul Jäger, Tim Adler, Jens Petersen, Gregor Köhler, Tobias Ross

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Detecting Out-of-Distribution (OoD) data is one of the greatest challenges in safe and robust deployment of machine learning algorithms in medicine. When the algorithms encounter cases that deviate from the distribution of the training data, they often produce incorrect and over-confident predictions. OoD detection algorithms aim to catch erroneous predictions in advance by analysing the data dist...

中文

中文摘要翻译待生成

Author Info / 作者信息
David Zimmerer Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构
Peter M. Full Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构
Fabian Isensee Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构
Paul Jäger Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构
Tim Adler Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构
Jens Petersen Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构
Gregor Köhler Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构
Tobias Ross Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构

Zhihua Wang, Lequan Yu, Xin Ding, Xuehong Liao, Liansheng Wang

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The gold standard for diagnosing lymph node metastasis of papillary thyroid carcinoma is to analyze the whole slide histopathological images (WSIs). Due to the large size of WSIs, recent computer-aided diagnosis approaches adopt the multi-instance learning (MIL) strategy and the key part is how to effectively aggregate the information of different instances (patches). In this paper, a novel transf...

中文

中文摘要翻译待生成

Author Info / 作者信息
Zhihua Wang Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构
Lequan Yu Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构
Xin Ding Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构
Xuehong Liao Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构
Liansheng Wang Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构

Jinyi Qi, Bangyan Huang

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Positron emission tomography is widely used in clinical and preclinical applications. Positronium lifetime carries information about the tissue microenvironment where positrons are emitted, but such information has not been captured because of two technical challenges. One challenge is the low sensitivity in detecting triple coincidence events. This problem has been mitigated by the recent develop...

中文

中文摘要翻译待生成

Author Info / 作者信息
Jinyi Qi Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构
Bangyan Huang Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构

Yankun Lang, Chunfeng Lian, Deqiang Xiao, Hannah Deng, Kim-Han Thung, Peng Yuan, Jaime Gateno, Tianshu Kuang

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Cephalometric analysis relies on accurate detection of craniomaxillofacial (CMF) landmarks from cone-beam computed tomography (CBCT) images. However, due to the complexity of CMF bony structures, it is difficult to localize landmarks efficiently and accurately. In this paper, we propose a deep learning framework to tackle this challenge by jointly digitalizing 105 CMF landmarks on CBCT images. By ...

中文

中文摘要翻译待生成

Author Info / 作者信息
Yankun Lang Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构
Chunfeng Lian Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构
Deqiang Xiao Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构
Hannah Deng Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构
Kim-Han Thung Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构
Peng Yuan Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构
Jaime Gateno Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构
Tianshu Kuang Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构

Xuzhe Zhang, Xinzi He, Jia Guo, Nabil Ettehadi, Natalie Aw, David Semanek, Jonathan Posner, Andrew Laine

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An increased interest in longitudinal neurodevelopment during the first few years after birth has emerged in recent years. Noninvasive magnetic resonance imaging (MRI) can provide crucial information about the development of brain structures in the early months of life. Despite the success of MRI collections and analysis for adults, it remains a challenge for researchers to collect high-quality mu...

中文

中文摘要翻译待生成

Author Info / 作者信息
Xuzhe Zhang Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构
Xinzi He Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构
Jia Guo Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构
Nabil Ettehadi Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构
Natalie Aw Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构
David Semanek Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构
Jonathan Posner Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构
Andrew Laine Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构

Anqi Xiao, Biluo Shen, Xiaojing Shi, Zhe Zhang, Zeyu Zhang, Jie Tian, Nan Ji, Zhenhua Hu

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Glioma grading during surgery can help clinical treatment planning and prognosis, but intraoperative pathological examination of frozen sections is limited by the long processing time and complex procedures. Near-infrared fluorescence imaging provides chances for fast and accurate real-time diagnosis. Recently, deep learning techniques have been actively explored for medical image analysis and dis...

中文

中文摘要翻译待生成

Author Info / 作者信息
Anqi Xiao Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构
Biluo Shen Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构
Xiaojing Shi Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构
Zhe Zhang Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构
Zeyu Zhang Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构
Jie Tian Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构
Nan Ji Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构
Zhenhua Hu Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构

Changyu Chen, Yuxiang Xing, Hewei Gao, Li Zhang, Zhiqiang Chen

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Limited angle reconstruction is a typical ill-posed problem in computed tomography (CT). Given incomplete projection data, images reconstructed by conventional analytical algorithms and iterative methods suffer from severe structural distortions and artifacts. In this paper, we proposed a self-augmented multi-stage deep-learning network (Sam’s Net) for end-to-end reconstruction of limited angle CT...

中文

中文摘要翻译待生成

Author Info / 作者信息
Changyu Chen Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构
Yuxiang Xing Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构
Hewei Gao Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构
Li Zhang Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构
Zhiqiang Chen Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构

Ryoji Hirano, Takuto Emura, Otoichi Nakata, Toshiharu Nakashima, Miyako Asai, Kuriko Kagitani-Shimono, Haruhiko Kishima, Masayuki Hirata

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Magnetoencephalography (MEG) is a useful tool for clinically evaluating the localization of interictal spikes. Neurophysiologists visually identify spikes from the MEG waveforms and estimate the equivalent current dipoles (ECD). However, presently, these analyses are manually performed by neurophysiologists and are time-consuming. Another problem is that spike identification from MEG waveforms lar...

中文

中文摘要翻译待生成

Author Info / 作者信息
Ryoji Hirano Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构
Takuto Emura Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构
Otoichi Nakata Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构
Toshiharu Nakashima Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构
Miyako Asai Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构
Kuriko Kagitani-Shimono Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构
Haruhiko Kishima Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构
Masayuki Hirata Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构

Seungbo Ha, Ilwoo Lyu

Body Part 身体部位
Pending
Modality 模态
Pending
Abstract / 摘要
English

We present a spherical harmonics-based convolutional neural network (CNN) for cortical parcellation, which we call SPHARM-Net. Recent advances in CNNs offer cortical parcellation on a fine-grained triangle mesh of the cortex. Yet, most CNNs designed for cortical parcellation employ spatial convolution that depends on extensive data augmentation and allows only predefined neighborhoods of specific ...

中文

中文摘要翻译待生成

Author Info / 作者信息
Seungbo Ha Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构
Ilwoo Lyu Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构

Junzhong Ji, Yaqin Zhang

Body Part 身体部位
Pending
Modality 模态
Pending
Abstract / 摘要
English

Brain network classification using resting-state functional magnetic resonance imaging (rs-fMRI) is an effective analytical method for diagnosing brain diseases. In recent years, brain network classification methods based on deep learning have attracted increasing attention. However, these methods only consider the spatial topological characteristics of the brain network but ignore its proximity r...

中文

中文摘要翻译待生成

Author Info / 作者信息
Junzhong Ji Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构
Yaqin Zhang Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构

Yakub A. Bayhaqi, Arsham Hamidi, Ferda Canbaz, Alexander A. Navarini, Philippe C. Cattin, Azhar Zam

Body Part 身体部位
Pending
Modality 模态
Pending
Abstract / 摘要
English

Laser osteotomy promises precise cutting and minor bone tissue damage. We proposed Optical Coherence Tomography (OCT) to monitor the ablation process toward our smart laser osteotomy approach. The OCT image is helpful to identify tissue type and provide feedback for the ablation laser to avoid critical tissues such as bone marrow and nerve. Furthermore, in the implementation, the tissue classifier...

中文

中文摘要翻译待生成

Author Info / 作者信息
Yakub A. Bayhaqi Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构
Arsham Hamidi Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构
Ferda Canbaz Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构
Alexander A. Navarini Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构
Philippe C. Cattin Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构
Azhar Zam Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构

Tingting Dan, Zhuobin Huang, Hongmin Cai, Paul J. Laurienti, Guorong Wu

Body Part 身体部位
Pending
Modality 模态
Pending
Abstract / 摘要
English

Functional connectivities (FC) of brain network manifest remarkable geometric patterns, which is the gateway to understanding brain dynamics. In this work, we present a novel geometric-attention neural network to characterize the time-evolving brain state change from the functional neuroimages by tracking the trajectory of functional dynamics on high-dimension Riemannian manifold of symmetric posi...

中文

中文摘要翻译待生成

Author Info / 作者信息
Tingting Dan Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构
Zhuobin Huang Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构
Hongmin Cai Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构
Paul J. Laurienti Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构
Guorong Wu Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构

Haoran Lai, Sirui Fu, Jie Zhang, Jianyun Cao, Qianjin Feng, Ligong Lu, Meiyan Huang

Body Part 身体部位
Pending
Modality 模态
Pending
Abstract / 摘要
English

Macrovascular invasion (MaVI) is a major threat to survival in hepatocellular carcinoma (HCC), which should be treated as early as possible to ensure safety and efficacy. In this aspect, MaVI prediction can be helpful. However, MaVI prediction is difficult because of the inter-class similarity and intra-class variation of HCC in computed tomography (CT) images. Moreover, existing methods fail to i...

中文

中文摘要翻译待生成

Author Info / 作者信息
Haoran Lai Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构
Sirui Fu Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构
Jie Zhang Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构
Jianyun Cao Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构
Qianjin Feng Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构
Ligong Lu Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构
Meiyan Huang Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构

Wei Wu, Jingyang Zhang, Wenjia Peng, Hongzhi Xie, Shuyang Zhang, Lixu Gu

Body Part 身体部位
Pending
Modality 模态
Pending
Abstract / 摘要
English

Percutaneous coronary intervention is widely applied for the treatment of coronary artery disease under the guidance of X-ray coronary angiography (XCA) image. However, the projective nature of XCA causes the loss of 3D structural information, which hinders the intervention. This issue can be addressed by the deformable 3D/2D coronary artery registration technique, which fuses the pre-operative co...

中文

中文摘要翻译待生成

Author Info / 作者信息
Wei Wu Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构
Jingyang Zhang Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构
Wenjia Peng Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构
Hongzhi Xie Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构
Shuyang Zhang Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构
Lixu Gu Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构

Datta Singh Goolaub, Jiawei Xu, Eric M. Schrauben, Davide Marini, John C. Kingdom, John G. Sled, Mike Seed, Christopher K. Macgowan

Body Part 身体部位
Pending
Modality 模态
Pending
Abstract / 摘要
English

Fetal development relies on a complex circulatory network. Accurate assessment of flow distribution is important for understanding pathologies and potential therapies. In this paper, we demonstrate a method for volumetric imaging of fetal flow with magnetic resonance imaging (MRI). Fetal MRI faces challenges: small vascular structures, unpredictable motion, and inadequate traditional cardiac gatin...

中文

中文摘要翻译待生成

Author Info / 作者信息
Datta Singh Goolaub Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构
Jiawei Xu Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构
Eric M. Schrauben Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构
Davide Marini Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构
John C. Kingdom Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构
John G. Sled Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构
Mike Seed Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构
Christopher K. Macgowan Affiliation not provided by IEEE Xplore 机构中文翻译待生成或 IEEE 未提供机构
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