Earlier collected articles较早收录文章
May 2023 · Volume 42, Issue 5 · Vol. 42 · Issue 5 · DOI 10.1109/TMI.2022.3230943
Xiaohong Huang, Zhifang Deng, Dandan Li, Xueguang Yuan, Ying Fu
Abstract / 摘要
EnglishTransformer-based methods are recently popular in vision tasks because of their capability to model global dependencies alone. However, it limits the performance of networks due to the lack of modeling local context and global-local correlations of multi-scale features. In this paper, we present MISSFormer, a Medical Image Segmentation tranSFormer. MISSFormer is a hierarchical encoder-decoder network with two appealing designs: 1) a feed-forward network in transformer block of U-shaped encoder-decoder structure is redesigned, ReMix-FFN, which explore global dependencies and local context for better feature discrimination by re-integrating the local context and global dependencies; 2) a ReMixed Transformer Context Bridge is proposed to extract the correlations of global dependencies and local context in multi-scale features generated by our hierarchical transformer encoder. The MISSFormer shows a solid capacity to capture more discriminative dependencies and context in medical image segmentation. The experiments on multi-organ, cardiac segmentation and retinal vessel segmentation tasks demonstrate the superiority, effectiveness and robustness of our MISSFormer. Specifically, the experimental results of MISSFormer trained from scratch even outperform state-of-the-art methods pre-trained on ImageNet, and the core designs can be generalized to other visual segmentation tasks. The code has been released on Github: https://github.com/ZhifangDeng/MISSFormer .
Author Info / 作者信息
Xiaohong Huang
School of Computer Science (National Pilot Software Engineering School), Beijing University of Posts and Telecommunications, Beijing, China
机构中文翻译待生成或 IEEE 未提供机构
Zhifang Deng
School of Computer Science (National Pilot Software Engineering School), Beijing University of Posts and Telecommunications, Beijing, China
机构中文翻译待生成或 IEEE 未提供机构
Dandan Li
School of Computer Science (National Pilot Software Engineering School), Beijing University of Posts and Telecommunications, Beijing, China
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Xueguang Yuan
School of Electronic Engineering, Beijing University of Posts and Telecommunications, Beijing, China
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Ying Fu
Department of Ultrasound, Peking University Third Hospital, Beijing, China
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Translation: pending
AI: pending
Article 9994763
May 2023 · Volume 42, Issue 5 · Vol. 42 · Issue 5 · DOI 10.1109/TMI.2022.3226268
Gongping Chen, Lei Li, Yu Dai, Jianxun Zhang, Moi Hoon Yap
Abstract / 摘要
EnglishVarious deep learning methods have been proposed to segment breast lesions from ultrasound images. However, similar intensity distributions, variable tumor morphologies and blurred boundaries present challenges for breast lesions segmentation, especially for malignant tumors with irregular shapes. Considering the complexity of ultrasound images, we develop an adaptive attention U-net (AAU-net) to ...
Author Info / 作者信息
Gongping Chen
Affiliation not provided by IEEE Xplore
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Lei Li
Affiliation not provided by IEEE Xplore
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Yu Dai
Affiliation not provided by IEEE Xplore
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Jianxun Zhang
Affiliation not provided by IEEE Xplore
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Moi Hoon Yap
Affiliation not provided by IEEE Xplore
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Translation: pending
AI: pending
Article 9968268
May 2023 · Volume 42, Issue 5 · Vol. 42 · Issue 5 · DOI 10.1109/TMI.2022.3225687
Tao Lei, Dong Zhang, Xiaogang Du, Xuan Wang, Yong Wan, Asoke K. Nandi
Abstract / 摘要
EnglishPopular semi-supervised medical image segmentation networks often suffer from error supervision from unlabeled data since they usually use consistency learning under different data perturbations to regularize model training. These networks ignore the relationship between labeled and unlabeled data, and only compute single pixel-level consistency leading to uncertain prediction results. Besides, th...
Author Info / 作者信息
Tao Lei
Affiliation not provided by IEEE Xplore
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Dong Zhang
Affiliation not provided by IEEE Xplore
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Xiaogang Du
Affiliation not provided by IEEE Xplore
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Xuan Wang
Affiliation not provided by IEEE Xplore
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Yong Wan
Affiliation not provided by IEEE Xplore
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Asoke K. Nandi
Affiliation not provided by IEEE Xplore
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Translation: pending
AI: pending
Article 9966841
May 2023 · Volume 42, Issue 5 · Vol. 42 · Issue 5 · DOI 10.1109/TMI.2022.3230750
Qi Zhu, Bingliang Xu, Jiashuang Huang, Heyang Wang, Ruting Xu, Wei Shao, Daoqiang Zhang
Abstract / 摘要
EnglishMulti-modal fusion has become an important data analysis technology in Alzheimer’s disease (AD) diagnosis, which is committed to effectively extract and utilize complementary information among different modalities. However, most of the existing fusion methods focus on pursuing common feature representation by transformation, and ignore discriminative structural information among samples. In additi...
Author Info / 作者信息
Qi Zhu
Affiliation not provided by IEEE Xplore
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Bingliang Xu
Affiliation not provided by IEEE Xplore
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Jiashuang Huang
Affiliation not provided by IEEE Xplore
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Heyang Wang
Affiliation not provided by IEEE Xplore
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Ruting Xu
Affiliation not provided by IEEE Xplore
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Wei Shao
Affiliation not provided by IEEE Xplore
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Daoqiang Zhang
Affiliation not provided by IEEE Xplore
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Translation: pending
AI: pending
Article 9992255
May 2023 · Volume 42, Issue 5 · Vol. 42 · Issue 5 · DOI 10.1109/TMI.2022.3228285
Reza Rasti, Armin Biglari, Mohammad Rezapourian, Ziyun Yang, Sina Farsiu
Abstract / 摘要
EnglishOptical coherence tomography (OCT) helps ophthalmologists assess macular edema, accumulation of fluids, and lesions at microscopic resolution. Quantification of retinal fluids is necessary for OCT-guided treatment management, which relies on a precise image segmentation step. As manual analysis of retinal fluids is a time-consuming, subjective, and error-prone task, there is increasing demand for ...
Author Info / 作者信息
Reza Rasti
Affiliation not provided by IEEE Xplore
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Armin Biglari
Affiliation not provided by IEEE Xplore
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Mohammad Rezapourian
Affiliation not provided by IEEE Xplore
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Ziyun Yang
Affiliation not provided by IEEE Xplore
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Sina Farsiu
Affiliation not provided by IEEE Xplore
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Translation: pending
AI: pending
Article 9980422
May 2023 · Volume 42, Issue 5 · Vol. 42 · Issue 5 · DOI 10.1109/TMI.2022.3232411
Bo Liu, Li-Ming Zhan, Li Xu, Xiao-Ming Wu
Abstract / 摘要
EnglishMedical visual question answering (Med-VQA) aims to accurately answer a clinical question presented with a medical image. Despite its enormous potential in healthcare services, the development of this technology is still in the initial stage. On the one hand, Med-VQA tasks are highly challenging due to the massive diversity of clinical questions that require different visual reasoning skills for d...
Author Info / 作者信息
Bo Liu
Affiliation not provided by IEEE Xplore
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Li-Ming Zhan
Affiliation not provided by IEEE Xplore
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Li Xu
Affiliation not provided by IEEE Xplore
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Xiao-Ming Wu
Affiliation not provided by IEEE Xplore
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Translation: pending
AI: pending
Article 9999450
May 2023 · Volume 42, Issue 5 · Vol. 42 · Issue 5 · DOI 10.1109/TMI.2022.3227066
Zhonghang Zhu, Lequan Yu, Wei Wu, Rongshan Yu, Defu Zhang, Liansheng Wang
Abstract / 摘要
EnglishMulti-instance learning (MIL) is widely adop- ted for automatic whole slide image (WSI) analysis and it usually consists of two stages, i.e., instance feature extraction and feature aggregation. However, due to the “weak supervision” of slide-level labels, the feature aggregation stage would suffer from severe over-fitting in training an effective MIL model. In this case, mining more information f...
Author Info / 作者信息
Zhonghang Zhu
Affiliation not provided by IEEE Xplore
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Lequan Yu
Affiliation not provided by IEEE Xplore
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Wei Wu
Affiliation not provided by IEEE Xplore
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Rongshan Yu
Affiliation not provided by IEEE Xplore
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Defu Zhang
Affiliation not provided by IEEE Xplore
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Liansheng Wang
Affiliation not provided by IEEE Xplore
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Translation: pending
AI: pending
Article 9975198
May 2023 · Volume 42, Issue 5 · Vol. 42 · Issue 5 · DOI 10.1109/TMI.2022.3227105
Da He, Jiasheng Zhou, Xiaoyu Shang, Xingye Tang, Jiajia Luo, Sung-Liang Chen
Abstract / 摘要
EnglishAs a hybrid imaging technology, photoacoustic microscopy (PAM) imaging suffers from noise due to the maximum permissible exposure of laser intensity, attenuation of ultrasound in the tissue, and the inherent noise of the transducer. De-noising is an image processing method to reduce noise, and PAM image quality can be recovered. However, previous de-noising techniques usually heavily rely on manua...
Author Info / 作者信息
Da He
Affiliation not provided by IEEE Xplore
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Jiasheng Zhou
Affiliation not provided by IEEE Xplore
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Xiaoyu Shang
Affiliation not provided by IEEE Xplore
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Xingye Tang
Affiliation not provided by IEEE Xplore
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Jiajia Luo
Affiliation not provided by IEEE Xplore
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Sung-Liang Chen
Affiliation not provided by IEEE Xplore
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Translation: pending
AI: pending
Article 9970755
May 2023 · Volume 42, Issue 5 · Vol. 42 · Issue 5 · DOI 10.1109/TMI.2022.3228275
Lei Fan, Arcot Sowmya, Erik Meijering, Yang Song
Abstract / 摘要
EnglishHistopathological Whole Slide Images (WSIs) at giga-pixel resolution are the gold standard for cancer analysis and prognosis. Due to the scarcity of pixel- or patch-level annotations of WSIs, many existing methods attempt to predict survival outcomes based on a three-stage strategy that includes patch selection, patch-level feature extraction and aggregation. However, the patch features are usuall...
Author Info / 作者信息
Lei Fan
Affiliation not provided by IEEE Xplore
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Arcot Sowmya
Affiliation not provided by IEEE Xplore
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Erik Meijering
Affiliation not provided by IEEE Xplore
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Yang Song
Affiliation not provided by IEEE Xplore
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Translation: pending
AI: pending
Article 9980424
May 2023 · Volume 42, Issue 5 · Vol. 42 · Issue 5 · DOI 10.1109/TMI.2022.3229136
Weihang Dai, Xiaomeng Li, Xinpeng Ding, Kwang-Ting Cheng
Abstract / 摘要
EnglishLeft-ventricular ejection fraction (LVEF) is an important indicator of heart failure. Existing methods for LVEF estimation from video require large amounts of annotated data to achieve high performance, e.g. using 10,030 labeled echocardiogram videos to achieve mean absolute error (MAE) of 4.10. Labeling these videos is time-consuming however and limits potential downstream applications to other h...
Author Info / 作者信息
Weihang Dai
Affiliation not provided by IEEE Xplore
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Xiaomeng Li
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Xinpeng Ding
Affiliation not provided by IEEE Xplore
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Kwang-Ting Cheng
Affiliation not provided by IEEE Xplore
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Translation: pending
AI: pending
Article 9984674
May 2023 · Volume 42, Issue 5 · Vol. 42 · Issue 5 · DOI 10.1109/TMI.2022.3231461
Pengfei Yang, Xin Ge, Tiffany Tsui, Xiaokun Liang, Yaoqin Xie, Zhanli Hu, Tianye Niu
Abstract / 摘要
EnglishA novel method is proposed to obtain four-dimensional (4D) cone-beam computed tomography (CBCT) images from a routine scan in patients with upper abdominal cancer. The projections are sorted according to the location of the lung diaphragm before being reconstructed to phase-sorted data. A multiscale-discriminator generative adversarial network (MSD-GAN) is proposed to alleviate the severe streakin...
Author Info / 作者信息
Pengfei Yang
Affiliation not provided by IEEE Xplore
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Xin Ge
Affiliation not provided by IEEE Xplore
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Tiffany Tsui
Affiliation not provided by IEEE Xplore
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Xiaokun Liang
Affiliation not provided by IEEE Xplore
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Yaoqin Xie
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Zhanli Hu
Affiliation not provided by IEEE Xplore
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Tianye Niu
Affiliation not provided by IEEE Xplore
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Translation: pending
AI: pending
Article 9996416
May 2023 · Volume 42, Issue 5 · Vol. 42 · Issue 5 · DOI 10.1109/TMI.2022.3226274
Robail Yasrab, Zeyu Fu, He Zhao, Lok Hin Lee, Harshita Sharma, Lior Drukker, Aris T Papageorgiou, J. Alison Noble
Abstract / 摘要
EnglishObstetric ultrasound assessment of fetal anatomy in the first trimester of pregnancy is one of the less explored fields in obstetric sonography because of the paucity of guidelines on anatomical screening and availability of data. This paper, for the first time, examines imaging proficiency and practices of first trimester ultrasound scanning through analysis of full-length ultrasound video scans....
Author Info / 作者信息
Robail Yasrab
Affiliation not provided by IEEE Xplore
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Zeyu Fu
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
He Zhao
Affiliation not provided by IEEE Xplore
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Lok Hin Lee
Affiliation not provided by IEEE Xplore
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Harshita Sharma
Affiliation not provided by IEEE Xplore
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Lior Drukker
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Aris T Papageorgiou
Affiliation not provided by IEEE Xplore
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J. Alison Noble
Affiliation not provided by IEEE Xplore
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Translation: pending
AI: pending
Article 9968267
May 2023 · Volume 42, Issue 5 · Vol. 42 · Issue 5 · DOI 10.1109/TMI.2022.3230635
Ali K. Z. Tehrani, Md Ashikuzzaman, Hassan Rivaz
Abstract / 摘要
EnglishConvolutional Neural Networks (CNN) have shown promising results for displacement estimation in UltraSound Elastography (USE). Many modifications have been proposed to improve the displacement estimation of CNNs for USE in the axial direction. However, the lateral strain, which is essential in several downstream tasks such as the inverse problem of elasticity imaging, remains a challenge. The late...
Author Info / 作者信息
Ali K. Z. Tehrani
Affiliation not provided by IEEE Xplore
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Md Ashikuzzaman
Affiliation not provided by IEEE Xplore
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Hassan Rivaz
Affiliation not provided by IEEE Xplore
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Translation: pending
AI: pending
Article 9992016
May 2023 · Volume 42, Issue 5 · Vol. 42 · Issue 5 · DOI 10.1109/TMI.2022.3225433
Johan Nuyts, Michel Defrise, Stefan Gundacker, Emilie Roncali, Paul Lecoq
Abstract / 摘要
EnglishIt is well known that measurement of the time-of-flight (TOF) increases the information provided by coincident events in positron emission tomography (PET). This information increase propagates through the reconstruction and improves the signal-to-noise ratio in the reconstructed images. Takehiro Tomitani has analytically computed the gain in variance in the reconstructed image, provided by a part...
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Johan Nuyts
Affiliation not provided by IEEE Xplore
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Michel Defrise
Affiliation not provided by IEEE Xplore
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Stefan Gundacker
Affiliation not provided by IEEE Xplore
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Emilie Roncali
Affiliation not provided by IEEE Xplore
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Paul Lecoq
Affiliation not provided by IEEE Xplore
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Translation: pending
AI: pending
Article 9965431
May 2023 · Volume 42, Issue 5 · Vol. 42 · Issue 5 · DOI 10.1109/TMI.2022.3232572
Pengchong Qiao, Han Li, Guoli Song, Hu Han, Zhiqiang Gao, Yonghong Tian, Yongsheng Liang, Xi Li
Abstract / 摘要
EnglishSemi-supervised learning (SSL) methods show their powerful performance to deal with the issue of data shortage in the field of medical image segmentation. However, existing SSL methods still suffer from the problem of unreliable predictions on unannotated data due to the lack of manual annotations for them. In this paper, we propose an unreliability-diluted consistency training (UDiCT) mechanism t...
Author Info / 作者信息
Pengchong Qiao
Affiliation not provided by IEEE Xplore
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Han Li
Affiliation not provided by IEEE Xplore
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Guoli Song
Affiliation not provided by IEEE Xplore
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Hu Han
Affiliation not provided by IEEE Xplore
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Zhiqiang Gao
Affiliation not provided by IEEE Xplore
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Yonghong Tian
Affiliation not provided by IEEE Xplore
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Yongsheng Liang
Affiliation not provided by IEEE Xplore
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Xi Li
Affiliation not provided by IEEE Xplore
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Translation: pending
AI: pending
Article 10002838
May 2023 · Volume 42, Issue 5 · Vol. 42 · Issue 5 · DOI 10.1109/TMI.2022.3233876
D. Vijay Anand, Moo K. Chung
Abstract / 摘要
EnglishThe closed loops or cycles in a brain network embeds higher order signal transmission paths, which provide fundamental insights into the functioning of the brain. In this work, we propose an efficient algorithm for systematic identification and modeling of cycles using persistent homology and the Hodge Laplacian. Various statistical inference procedures on cycles are developed. We validate the our...
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D. Vijay Anand
Affiliation not provided by IEEE Xplore
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Moo K. Chung
Affiliation not provided by IEEE Xplore
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Translation: pending
AI: pending
Article 10005115
May 2023 · Volume 42, Issue 5 · Vol. 42 · Issue 5 · DOI 10.1109/TMI.2022.3227262
Junwei Yang, Xiao-Xin Li, Feihong Liu, Dong Nie, Pietro Lio, Haikun Qi, Dinggang Shen
Abstract / 摘要
EnglishRecent studies on multi-contrast MRI reconstruction have demonstrated the potential of further accelerating MRI acquisition by exploiting correlation between contrasts. Most of the state-of-the-art approaches have achieved improvement through the development of network architectures for fixed under-sampling patterns, without considering inter-contrast correlation in the under-sampling pattern desi...
Author Info / 作者信息
Junwei Yang
Affiliation not provided by IEEE Xplore
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Xiao-Xin Li
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Feihong Liu
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Dong Nie
Affiliation not provided by IEEE Xplore
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Pietro Lio
Affiliation not provided by IEEE Xplore
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Haikun Qi
Affiliation not provided by IEEE Xplore
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Dinggang Shen
Affiliation not provided by IEEE Xplore
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Translation: pending
AI: pending
Article 9973356
May 2023 · Volume 42, Issue 5 · Vol. 42 · Issue 5 · DOI 10.1109/TMI.2022.3228254
Yixiong Chen, Chunhui Zhang, Chris H. Q. Ding, Li Liu
Abstract / 摘要
EnglishWell-annotated medical datasets enable deep neural networks (DNNs) to gain strong power in extracting lesion-related features. Building such large and well-designed medical datasets is costly due to the need for high-level expertise. Model pre-training based on ImageNet is a common practice to gain better generalization when the data amount is limited. However, it suffers from the domain gap betwe...
Author Info / 作者信息
Yixiong Chen
Affiliation not provided by IEEE Xplore
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Chunhui Zhang
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Chris H. Q. Ding
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Li Liu
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Translation: pending
AI: pending
Article 9980429
May 2023 · Volume 42, Issue 5 · Vol. 42 · Issue 5 · DOI 10.1109/TMI.2022.3231626
Dongxu Zhang, Yang Yan, Yulin Huang, Bowen Liu, Qingbing Zheng, Jun Zhang, Ningshao Xia
Abstract / 摘要
EnglishCryo-electron microscopy (cryo-EM) is a widely used structural determination technique. Because of the extremely low signal-to-noise ratio (SNR) of images captured by cryo-EM, clustering single-particle cryo-EM images with high accuracy is challenging. To address this, we proposed an iterative denoising and clustering method based on a deep convolutional variational autoencoder and K-means++. The ...
Author Info / 作者信息
Dongxu Zhang
Affiliation not provided by IEEE Xplore
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Yang Yan
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Yulin Huang
Affiliation not provided by IEEE Xplore
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Bowen Liu
Affiliation not provided by IEEE Xplore
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Qingbing Zheng
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Jun Zhang
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Ningshao Xia
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Translation: pending
AI: pending
Article 9997544
May 2023 · Volume 42, Issue 5 · Vol. 42 · Issue 5 · DOI 10.1109/TMI.2022.3226604
Huidong Xie, Zhao Liu, Luyao Shi, Kathleen Greco, Xiongchao Chen, Bo Zhou, Attila Feher, John C. Stendahl
Abstract / 摘要
EnglishIn nuclear imaging, limited resolution causes partial volume effects (PVEs) that affect image sharpness and quantitative accuracy. Partial volume correction (PVC) methods incorporating high-resolution anatomical information from CT or MRI have been demonstrated to be effective. However, such anatomical-guided methods typically require tedious image registration and segmentation steps. Accurately s...
Author Info / 作者信息
Huidong Xie
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Zhao Liu
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Luyao Shi
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Kathleen Greco
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Xiongchao Chen
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Bo Zhou
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Attila Feher
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
John C. Stendahl
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Translation: pending
AI: pending
Article 9969636
May 2023 · Volume 42, Issue 5 · Vol. 42 · Issue 5 · DOI 10.1109/TMI.2022.3228075
Zhengguo Tan, Christina Unterberg-Buchwald, Moritz Blumenthal, Nick Scholand, Philip Schaten, Christian Holme, Xiaoqing Wang, Dirk Raddatz
Abstract / 摘要
EnglishThis work introduced a stack-of-radial multi-echo asymmetric-echo MRI sequence for free-breathing liver volumetric acquisition. Regularized model-based reconstruction was implemented in Berkeley Advanced Reconstruction Toolbox (BART) to jointly estimate all physical parameter maps (water, fat, ${R}_{{2}}^{\ast}$ , and ${B}_{{0}}$ field inhomogeneity maps) and coil sensitivity maps from self-gat...
Author Info / 作者信息
Zhengguo Tan
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Christina Unterberg-Buchwald
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Moritz Blumenthal
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Nick Scholand
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Philip Schaten
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Christian Holme
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Xiaoqing Wang
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Dirk Raddatz
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Translation: pending
AI: pending
Article 9978665
May 2023 · Volume 42, Issue 5 · Vol. 42 · Issue 5 · DOI 10.1109/TMI.2022.3191974
Jianye Pang, Cheng Jiang, Yihao Chen, Jianbo Chang, Ming Feng, Renzhi Wang, Jianhua Yao
Abstract / 摘要
EnglishDense prediction in medical volume provides enriched guidance for clinical analysis. CNN backbones have met bottleneck due to lack of long-range dependencies and global context modeling power. Recent works proposed to combine vision transformer with CNN, due to its strong global capture ability and learning capability. However, most works are limited to simply applying pure transformer with severa...
Author Info / 作者信息
Jianye Pang
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Cheng Jiang
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Yihao Chen
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Jianbo Chang
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Ming Feng
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Renzhi Wang
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Jianhua Yao
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Translation: pending
AI: pending
Article 9832644
May 2023 · Volume 42, Issue 5 · Vol. 42 · Issue 5 · DOI 10.1109/TMI.2022.3226226
Yanming Zhu, Xuefei Yin, Erik Meijering
Abstract / 摘要
EnglishMicroscopy cell segmentation is a crucial step in biological image analysis and a challenging task. In recent years, deep learning has been widely used to tackle this task, with promising results. A critical aspect of training complex neural networks for this purpose is the selection of the loss function, as it affects the learning process. In the field of cell segmentation, most of the recent res...
Author Info / 作者信息
Yanming Zhu
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Xuefei Yin
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Erik Meijering
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Translation: pending
AI: pending
Article 9968269
May 2023 · Volume 42, Issue 5 · Vol. 42 · Issue 5 · DOI 10.1109/TMI.2022.3226329
Chuanpeng Wu, Liang Li
Abstract / 摘要
EnglishX-ray fluorescence computed tomography (XFCT) is a promising approach used for obtaining the distribution of high-Z elements in the target object. The characteristic energy of X-ray fluorescence (XRF) photons makes XFCT have higher sensitivity and contrast ratio. Conventional XFCT systems usually require mechanical collimators, which leads to a huge loss of incident photons and reduce photon colle...
Author Info / 作者信息
Chuanpeng Wu
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Liang Li
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Translation: pending
AI: pending
Article 9968272
May 2023 · Volume 42, Issue 5 · Vol. 42 · Issue 5 · DOI 10.1109/TMI.2022.3231782
Frank Ong, Zheng Zhong, Congyu Liao, Michael Lustig, Shreyas S. Vasanawala, John M. Pauly
Abstract / 摘要
EnglishThe Shinnar-Le-Roux (SLR) algorithm is widely used to design frequency selective pulses with large flip angles. We improve its design process to generate pulses with lower energy (by as much as 26%) and more accurate phase profiles. Concretely, the SLR algorithm consists of two steps: (1) an invertible transform between frequency selective pulses and polynomial pairs that represent Cayley-Klein (C...
Author Info / 作者信息
Frank Ong
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Zheng Zhong
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Congyu Liao
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Michael Lustig
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Shreyas S. Vasanawala
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
John M. Pauly
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Translation: pending
AI: pending
Article 10002188