Earlier collected articles较早收录文章
April 2022 · Volume 41, Issue 4 · Vol. 41 · Issue 4 · DOI 10.1109/TMI.2020.3021387
Richard J. Chen, Ming Y. Lu, Jingwen Wang, Drew F. K. Williamson, Scott J. Rodig, Neal I. Lindeman, Faisal Mahmood
Abstract / 摘要
EnglishCancer diagnosis, prognosis, mymargin and therapeutic response predictions are based on morphological information from histology slides and molecular profiles from genomic data. However, most deep learning-based objective outcome prediction and grading paradigms are based on histology or genomics alone and do not make use of the complementary information in an intuitive manner. In this work, we propose Pathomic Fusion , an interpretable strategy for end-to-end multimodal fusion of histology image and genomic (mutations, CNV, RNA-Seq) features for survival outcome prediction. Our approach models pairwise feature interactions across modalities by taking the Kronecker product of unimodal feature representations, and controls the expressiveness of each representation via a gating-based attention mechanism. Following supervised learning, we are able to interpret and saliently localize features across each modality, and understand how feature importance shifts when conditioning on multimodal input. We validate our approach using glioma and clear cell renal cell carcinoma datasets from the Cancer Genome Atlas (TCGA), which contains paired whole-slide image, genotype, and transcriptome data with ground truth survival and histologic grade labels. In a 15-fold cross-validation, our results demonstrate that the proposed multimodal fusion paradigm improves prognostic determinations from ground truth grading and molecular subtyping, as well as unimodal deep networks trained on histology and genomic data alone. The proposed method establishes insight and theory on how to train deep networks on multimodal biomedical data in an intuitive manner, which will be useful for other problems in medicine that seek to combine heterogeneous data streams for understanding diseases and predicting response and resistance to treatment. Code and trained models are made available at: https://github.com/mahmoodlab/PathomicFusion .
Author Info / 作者信息
Richard J. Chen
Department of Pathology, Brigham and Women’s Hospital, Harvard Medical School, Boston, MA, USA; Broad Institute of Harvard, Cambridge, MA, USA; Massachusetts Institute of Technology (MIT), Cambridge, MA, USA; Dana-Farber Cancer Institute, Boston, MA, USA; Department of Biomedical Informatics, Harvard Medical School, Boston, MA, USA
机构中文翻译待生成或 IEEE 未提供机构
Ming Y. Lu
Department of Pathology, Brigham and Women’s Hospital, Harvard Medical School, Boston, MA, USA; Broad Institute of Harvard, Cambridge, MA, USA; Massachusetts Institute of Technology (MIT), Cambridge, MA, USA; Dana-Farber Cancer Institute, Boston, MA, USA
机构中文翻译待生成或 IEEE 未提供机构
Jingwen Wang
Department of Pathology, Brigham and Women’s Hospital, Harvard Medical School, Boston, MA, USA
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Drew F. K. Williamson
Department of Pathology, Brigham and Women’s Hospital, Harvard Medical School, Boston, MA, USA
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Scott J. Rodig
Department of Pathology, Brigham and Women’s Hospital, Harvard Medical School, Boston, MA, USA
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Neal I. Lindeman
Department of Pathology, Brigham and Women’s Hospital, Harvard Medical School, Boston, MA, USA
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Faisal Mahmood
Department of Pathology, Brigham and Women’s Hospital, Harvard Medical School, Boston, MA, USA; Broad Institute of Harvard, Cambridge, MA, USA; Massachusetts Institute of Technology (MIT), Cambridge, MA, USA; Dana-Farber Cancer Institute, Boston, MA, USA
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Translation: pending
AI: pending
Article 9186053
April 2022 · Volume 41, Issue 4 · Vol. 41 · Issue 4 · DOI 10.1109/TMI.2021.3130469
Jeya Maria Jose Valanarasu, Vishwanath A. Sindagi, Ilker Hacihaliloglu, Vishal M. Patel
Abstract / 摘要
EnglishMost methods for medical image segmentation use U-Net or its variants as they have been successful in most of the applications. After a detailed analysis of these “traditional” encoder-decoder based approaches, we observed that they perform poorly in detecting smaller structures and are unable to segment boundary regions precisely. This issue can be attributed to the increase in receptive field si...
Author Info / 作者信息
Jeya Maria Jose Valanarasu
Affiliation not provided by IEEE Xplore
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Vishwanath A. Sindagi
Affiliation not provided by IEEE Xplore
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Ilker Hacihaliloglu
Affiliation not provided by IEEE Xplore
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Vishal M. Patel
Affiliation not provided by IEEE Xplore
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Translation: pending
AI: pending
Article 9625988
April 2022 · Volume 41, Issue 4 · Vol. 41 · Issue 4 · DOI 10.1109/TMI.2021.3125459
Chuang Zhu, Wenkai Chen, Ting Peng, Ying Wang, Mulan Jin
Abstract / 摘要
EnglishDeep learning-based histopathology image classification is a key technique to help physicians in improving the accuracy and promptness of cancer diagnosis. However, the noisy labels are often inevitable in the complex manual annotation process, and thus mislead the training of the classification model. In this work, we introduce a novel hard sample aware noise robust learning method for histopatho...
Author Info / 作者信息
Chuang Zhu
Affiliation not provided by IEEE Xplore
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Wenkai Chen
Affiliation not provided by IEEE Xplore
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Ting Peng
Affiliation not provided by IEEE Xplore
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Ying Wang
Affiliation not provided by IEEE Xplore
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Mulan Jin
Affiliation not provided by IEEE Xplore
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Translation: pending
AI: pending
Article 9600806
April 2022 · Volume 41, Issue 4 · Vol. 41 · Issue 4 · DOI 10.1109/TMI.2021.3127074
Hong Wang, Yuexiang Li, Nanjun He, Kai Ma, Deyu Meng, Yefeng Zheng
Abstract / 摘要
EnglishComputed tomography (CT) images are often impaired by unfavorable artifacts caused by metallic implants within patients, which would adversely affect the subsequent clinical diagnosis and treatment. Although the existing deep-learning-based approaches have achieved promising success on metal artifact reduction (MAR) for CT images, most of them treated the task as a general image restoration proble...
Author Info / 作者信息
Hong Wang
Affiliation not provided by IEEE Xplore
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Yuexiang Li
Affiliation not provided by IEEE Xplore
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Nanjun He
Affiliation not provided by IEEE Xplore
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Kai Ma
Affiliation not provided by IEEE Xplore
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Deyu Meng
Affiliation not provided by IEEE Xplore
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Yefeng Zheng
Affiliation not provided by IEEE Xplore
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Translation: pending
AI: pending
Article 9609987
April 2022 · Volume 41, Issue 4 · Vol. 41 · Issue 4 · DOI 10.1109/TMI.2021.3123572
Feng Shi, Bojiang Chen, Qiqi Cao, Ying Wei, Qing Zhou, Rui Zhang, Yaojie Zhou, Wenjie Yang
Abstract / 摘要
EnglishLung cancer is the leading cause of cancer deaths worldwide. Accurately diagnosing the malignancy of suspected lung nodules is of paramount clinical importance. However, to date, the pathologically-proven lung nodule dataset is largely limited and is highly imbalanced in benign and malignant distributions. In this study, we proposed a Semi-supervised Deep Transfer Learning (SDTL) framework for ben...
Author Info / 作者信息
Feng Shi
Affiliation not provided by IEEE Xplore
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Bojiang Chen
Affiliation not provided by IEEE Xplore
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Qiqi Cao
Affiliation not provided by IEEE Xplore
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Ying Wei
Affiliation not provided by IEEE Xplore
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Qing Zhou
Affiliation not provided by IEEE Xplore
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Rui Zhang
Affiliation not provided by IEEE Xplore
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Yaojie Zhou
Affiliation not provided by IEEE Xplore
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Wenjie Yang
Affiliation not provided by IEEE Xplore
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Translation: pending
AI: pending
Article 9591607
April 2022 · Volume 41, Issue 4 · Vol. 41 · Issue 4 · DOI 10.1109/TMI.2021.3124217
Yue Zhao, Lingming Zhang, Yang Liu, Deyu Meng, Zhiming Cui, Chenqiang Gao, Xinbo Gao, Chunfeng Lian
Abstract / 摘要
EnglishPrecise segmentation of teeth from intra-oral scanner images is an essential task in computer-aided orthodontic surgical planning. The state-of-the-art deep learning-based methods often simply concatenate the raw geometric attributes (i.e., coordinates and normal vectors) of mesh cells to train a single-stream network for automatic intra-oral scanner image segmentation. However, since different ra...
Author Info / 作者信息
Yue Zhao
Affiliation not provided by IEEE Xplore
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Lingming Zhang
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Yang Liu
Affiliation not provided by IEEE Xplore
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Deyu Meng
Affiliation not provided by IEEE Xplore
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Zhiming Cui
Affiliation not provided by IEEE Xplore
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Chenqiang Gao
Affiliation not provided by IEEE Xplore
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Xinbo Gao
Affiliation not provided by IEEE Xplore
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Chunfeng Lian
Affiliation not provided by IEEE Xplore
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Translation: pending
AI: pending
Article 9594785
April 2022 · Volume 41, Issue 4 · Vol. 41 · Issue 4 · DOI 10.1109/TMI.2021.3123912
Chloé Bourquin, Jonathan Porée, Frédéric Lesage, Jean Provost
Abstract / 摘要
EnglishAn increased pulse pressure, due to arteries stiffening with age and cardiovascular disease, may lead to downstream brain damage in microvessels and cognitive decline. Brain-wide imaging of the pulsatility propagation from main feeding arteries to capillaries in small animals could improve our understanding of the link between pulsatility and cognitive decline. However, it requires higher spatiote...
Author Info / 作者信息
Chloé Bourquin
Affiliation not provided by IEEE Xplore
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Jonathan Porée
Affiliation not provided by IEEE Xplore
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Frédéric Lesage
Affiliation not provided by IEEE Xplore
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Jean Provost
Affiliation not provided by IEEE Xplore
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Translation: pending
AI: pending
Article 9592678
April 2022 · Volume 41, Issue 4 · Vol. 41 · Issue 4 · DOI 10.1109/TMI.2021.3123300
Ponkrshnan Thiagarajan, Pushkar Khairnar, Susanta Ghosh
Abstract / 摘要
EnglishDespite the promise of Convolutional neural network (CNN) based classification models for histopathological images, it is infeasible to quantify its uncertainties. Moreover, CNNs may suffer from overfitting when the data is biased. We show that Bayesian–CNN can overcome these limitations by regularizing automatically and by quantifying the uncertainty. We have developed a novel technique to utiliz...
Author Info / 作者信息
Ponkrshnan Thiagarajan
Affiliation not provided by IEEE Xplore
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Pushkar Khairnar
Affiliation not provided by IEEE Xplore
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Susanta Ghosh
Affiliation not provided by IEEE Xplore
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Translation: pending
AI: pending
Article 9585450
April 2022 · Volume 41, Issue 4 · Vol. 41 · Issue 4 · DOI 10.1109/TMI.2021.3125777
Bo Yang, Min Liu, Yaonan Wang, Kang Zhang, Erik Meijering
Abstract / 摘要
EnglishDigital reconstruction of neuronal morphologies in 3D microscopy images is critical in the field of neuroscience. However, most existing automatic tracing algorithms cannot obtain accurate neuron reconstruction when processing 3D neuron images contaminated by strong background noises or containing weak filament signals. In this paper, we present a 3D neuron segmentation network named Structure-Gui...
Author Info / 作者信息
Bo Yang
Affiliation not provided by IEEE Xplore
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Min Liu
Affiliation not provided by IEEE Xplore
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Yaonan Wang
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Kang Zhang
Affiliation not provided by IEEE Xplore
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Erik Meijering
Affiliation not provided by IEEE Xplore
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Translation: pending
AI: pending
Article 9605594
April 2022 · Volume 41, Issue 4 · Vol. 41 · Issue 4 · DOI 10.1109/TMI.2021.3129739
Zhe Liu, Pierre Bagnaninchi, Yunjie Yang
Abstract / 摘要
EnglishWhile Electrical Impedance Tomography (EIT) has found many biomedicine applications, better image quality is needed to provide quantitative analysis for tissue engineering and regenerative medicine. This paper reports an impedance-optical dual-modal imaging framework that primarily targets at high-quality 3D cell culture imaging and can be extended to other tissue engineering applications. The fra...
Author Info / 作者信息
Zhe Liu
Affiliation not provided by IEEE Xplore
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Pierre Bagnaninchi
Affiliation not provided by IEEE Xplore
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Yunjie Yang
Affiliation not provided by IEEE Xplore
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Translation: pending
AI: pending
Article 9622264
April 2022 · Volume 41, Issue 4 · Vol. 41 · Issue 4 · DOI 10.1109/TMI.2021.3128408
Bin Huang, Yufeng Ye, Ziyue Xu, Zongyou Cai, Yan He, Zhangnan Zhong, Lingxiang Liu, Xin Chen
Abstract / 摘要
EnglishImage-guided radiation therapy (IGRT) is the most effective treatment for head and neck cancer. The successful implementation of IGRT requires accurate delineation of organ-at-risk (OAR) in the computed tomography (CT) images. In routine clinical practice, OARs are manually segmented by oncologists, which is time-consuming, laborious, and subjective. To assist oncologists in OAR contouring, we pro...
Author Info / 作者信息
Bin Huang
Affiliation not provided by IEEE Xplore
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Yufeng Ye
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Ziyue Xu
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Zongyou Cai
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Yan He
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Zhangnan Zhong
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Lingxiang Liu
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Xin Chen
Affiliation not provided by IEEE Xplore
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Translation: pending
AI: pending
Article 9615237
April 2022 · Volume 41, Issue 4 · Vol. 41 · Issue 4 · DOI 10.1109/TMI.2021.3125061
Chao Li, Haibo Jia, Jinwei Tian, Chong He, Fang Lu, Kaiwen Li, Yubin Gong, Sining Hu
Abstract / 摘要
EnglishCoronary calcification is a strong indicator of coronary artery disease and a key determinant of the outcome of percutaneous coronary intervention. We propose a fully automated method to segment and quantify coronary calcification in intravascular OCT (IVOCT) images based on convolutional neural networks (CNN). All possible calcified plaques were segmented from IVOCT pullbacks using a spatial-temp...
Author Info / 作者信息
Chao Li
Affiliation not provided by IEEE Xplore
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Haibo Jia
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Jinwei Tian
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Chong He
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Fang Lu
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Kaiwen Li
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Yubin Gong
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Sining Hu
Affiliation not provided by IEEE Xplore
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Translation: pending
AI: pending
Article 9600862
April 2022 · Volume 41, Issue 4 · Vol. 41 · Issue 4 · DOI 10.1109/TMI.2021.3129068
Maria Wimmer, Gert Sluiter, David Major, Dimitrios Lenis, Astrid Berg, Theresa Neubauer, Katja Bühler
Abstract / 摘要
EnglishMachine learning and deep learning methods have become essential for computer-assisted prediction in medicine, with a growing number of applications also in the field of mammography. Typically these algorithms are trained for a specific task, e.g., the classification of lesions or the prediction of a mammogram’s pathology status. To obtain a comprehensive view of a patient, models which were all t...
Author Info / 作者信息
Maria Wimmer
Affiliation not provided by IEEE Xplore
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Gert Sluiter
Affiliation not provided by IEEE Xplore
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David Major
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Dimitrios Lenis
Affiliation not provided by IEEE Xplore
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Astrid Berg
Affiliation not provided by IEEE Xplore
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Theresa Neubauer
Affiliation not provided by IEEE Xplore
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Katja Bühler
Affiliation not provided by IEEE Xplore
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Translation: pending
AI: pending
Article 9618960
April 2022 · Volume 41, Issue 4 · Vol. 41 · Issue 4 · DOI 10.1109/TMI.2021.3125398
Justine Robin, Ali Özbek, Michael Reiss, Xosé Luis Dean-Ben, Daniel Razansky
Abstract / 摘要
EnglishSpherical matrix arrays represent an advantageous tomographic detection geometry for non-invasive deep tissue mapping of vascular networks and oxygenation with volumetric optoacoustic tomography (VOT). Hybridization of VOT with ultrasound (US) imaging remains difficult with this configuration due to the relatively large inter-element pitch of spherical arrays. We suggest a new approach for combini...
Author Info / 作者信息
Justine Robin
Affiliation not provided by IEEE Xplore
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Ali Özbek
Affiliation not provided by IEEE Xplore
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Michael Reiss
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Xosé Luis Dean-Ben
Affiliation not provided by IEEE Xplore
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Daniel Razansky
Affiliation not provided by IEEE Xplore
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Translation: pending
AI: pending
Article 9600860
April 2022 · Volume 41, Issue 4 · Vol. 41 · Issue 4 · DOI 10.1109/TMI.2021.3129700
Mariia Borovkova, Oleksii Sieryi, Ivan Lopushenko, Natalia Kartashkina, Jens Pahnke, Alexander Bykov, Igor Meglinski
Abstract / 摘要
EnglishThe minimum histological criterion for the diagnostics of Alzheimer’s disease (AD) in tissue is the presence of senile plaques and neurofibrillary tangles in specific brain locations. The routine procedure of morphological analysis implies time-consuming and laborious steps including sectioning and staining of formalin-fixed paraffin-embedded (FFPE) tissue. We developed a multispectral Stokes pola...
Author Info / 作者信息
Mariia Borovkova
Affiliation not provided by IEEE Xplore
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Oleksii Sieryi
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Ivan Lopushenko
Affiliation not provided by IEEE Xplore
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Natalia Kartashkina
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Jens Pahnke
Affiliation not provided by IEEE Xplore
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Alexander Bykov
Affiliation not provided by IEEE Xplore
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Igor Meglinski
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 9622320
April 2022 · Volume 41, Issue 4 · Vol. 41 · Issue 4 · DOI 10.1109/TMI.2021.3123547
Mohammad H. Jafari, Christina Luong, Michael Tsang, Ang Nan Gu, Nathan Van Woudenberg, Robert Rohling, Teresa Tsang, Purang Abolmaesumi
Abstract / 摘要
EnglishThis paper presents U-LanD, a framework for automatic detection of landmarks on key frames of the video by leveraging the uncertainty of landmark prediction. We tackle a specifically challenging problem, where training labels are noisy and highly sparse. U-LanD builds upon a pivotal observation: a deep Bayesian landmark detector solely trained on key video frames, has significantly lower predictiv...
Author Info / 作者信息
Mohammad H. Jafari
Affiliation not provided by IEEE Xplore
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Christina Luong
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Michael Tsang
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Ang Nan Gu
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Nathan Van Woudenberg
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Robert Rohling
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Teresa Tsang
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Purang Abolmaesumi
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 9591229
April 2022 · Volume 41, Issue 4 · Vol. 41 · Issue 4 · DOI 10.1109/TMI.2021.3124124
Zhuoying Wang, Yifeng Zhou, Song Hu
Abstract / 摘要
EnglishUniquely capable of simultaneous imaging of the hemoglobin concentration, blood oxygenation, and flow speed at the microvascular level in vivo, multi-parametric photoacoustic microscopy (PAM) has shown considerable impact in biomedicine. However, the multi-parametric PAM acquisition requires dense sampling and thus a high laser pulse repetition rate (up to MHz), which sets a strict limit on the ap...
Author Info / 作者信息
Zhuoying Wang
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Yifeng Zhou
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Song Hu
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 9592786
April 2022 · Volume 41, Issue 4 · Vol. 41 · Issue 4 · DOI 10.1109/TMI.2021.3126492
Rafael C. Schick, Thomas Koehler, Wolfgang Noichl, Fabio De Marco, Konstantin Willer, Theresa Urban, Manuela Frank, Thomas Pralow
Abstract / 摘要
EnglishDark-field radiography of the human chest is a promising novel imaging technique with the potential of becoming a valuable tool for the early diagnosis of chronic obstructive pulmonary disease and other diseases of the lung. The large field-of-view needed for clinical purposes could recently be achieved by a scanning system. While this approach overcomes the limited availability of large area grat...
Author Info / 作者信息
Rafael C. Schick
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Thomas Koehler
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Wolfgang Noichl
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Fabio De Marco
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Konstantin Willer
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Theresa Urban
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Manuela Frank
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Thomas Pralow
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 9606762
April 2022 · Volume 41, Issue 4 · Vol. 41 · Issue 4 · DOI 10.1109/TMI.2021.3128641
Stephen A. Lee, Elisa E. Konofagou
Abstract / 摘要
EnglishImaging applications tailored towards ultrasound-based treatment, such as high intensity focused ultrasound (FUS), where higher power ultrasound generates a radiation force for ultrasound elasticity imaging or therapeutics/theranostics, are affected by interference from FUS. The artifact becomes more pronounced with intensity and power. To overcome this limitation, we propose FUS-net, a method tha...
Author Info / 作者信息
Stephen A. Lee
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Elisa E. Konofagou
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 9617613
April 2022 · Volume 41, Issue 4 · Vol. 41 · Issue 4 · DOI 10.1109/TMI.2021.3128743
S. Mazdak Abulnaga, Esra Abaci Turk, Mikhail Bessmeltsev, P. Ellen Grant, Justin Solomon, Polina Golland
Abstract / 摘要
EnglishWe present a volumetric mesh-based algorithm for parameterizing the placenta to a flattened template to enable effective visualization of local anatomy and function. MRI shows potential as a research tool as it provides signals directly related to placental function. However, due to the curved and highly variable in vivo shape of the placenta, interpreting and visualizing these images is difficult...
Author Info / 作者信息
S. Mazdak Abulnaga
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Esra Abaci Turk
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Mikhail Bessmeltsev
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
P. Ellen Grant
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Justin Solomon
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Polina Golland
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 9617616
April 2022 · Volume 41, Issue 4 · Vol. 41 · Issue 4 · DOI 10.1109/TMI.2021.3123252
Laurent Chauvin, Kuldeep Kumar, Christian Desrosiers, William Wells, Matthew Toews
Abstract / 摘要
EnglishWe propose a novel pairwise distance measure between image keypoint sets, for the purpose of large-scale medical image indexing. Our measure generalizes the Jaccard index to account for soft set equivalence (SSE) between keypoint elements, via an adaptive kernel framework modeling uncertainty in keypoint appearance and geometry. A new kernel is proposed to quantify the variability of keypoint geom...
Author Info / 作者信息
Laurent Chauvin
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Kuldeep Kumar
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Christian Desrosiers
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
William Wells
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Matthew Toews
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 9585454
April 2022 · Volume 41, Issue 4 · Vol. 41 · Issue 4 · DOI 10.1109/TMI.2022.3157048
Ruchika Verma, Neeraj Kumar, Abhijeet Patil, Nikhil Cherian Kurian, Swapnil Rane, Amit Sethi
Abstract / 摘要
EnglishWe had released MoNuSAC2020 as one of the largest publicly available, manually annotated, curated, multi-class, and multi-instance medical image segmentation datasets. Based on this dataset, we had organized a challenge at the International Symposium on Biomedical Imaging (ISBI) 2020. Along with the challenge participants, we had published an article summarizing the results and findings of the cha...
Author Info / 作者信息
Ruchika Verma
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Neeraj Kumar
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Abhijeet Patil
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Nikhil Cherian Kurian
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Swapnil Rane
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Amit Sethi
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 9745890
April 2022 · Volume 41, Issue 4 · Vol. 41 · Issue 4 · DOI 10.1109/TMI.2022.3156023
Adrien Foucart, Olivier Debeir, Christine Decaestecker
Abstract / 摘要
EnglishThe MoNuSAC 2020 challenge was hosted at the ISBI 2020 conference, where the winners were announced. Challenge organizers, in addition to the leaderboard, released the evaluation code and visualisations of the prediction masks of the “top 5” teams. This shows a very high level of transparency, and provides a unique opportunity to better understand the challenge results. Our analysis of the code an...
Author Info / 作者信息
Adrien Foucart
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Olivier Debeir
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Christine Decaestecker
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 9745980
April 2022 · Volume 41, Issue 4 · Vol. 41 · Issue 4 · DOI 10.1109/TMI.2022.3155085
Authors pending
Abstract / 摘要
EnglishDescribes the above-named upcoming conference event. May include topics to be covered or calls for papers.
Translation: pending
AI: pending
Article 9745981
April 2022 · Volume 41, Issue 4 · Vol. 41 · Issue 4 · DOI 10.1109/TMI.2022.3160249
Authors pending
Abstract / 摘要
EnglishPresents the table of contents for this issue of this publication.
Translation: pending
AI: pending
Article 9745984