Earlier collected articles较早收录文章
Jan. 2021 · Volume 40, Issue 1 · Vol. 40 · Issue 1 · DOI 10.1109/TMI.2020.3023463
Along He, Tao Li, Ning Li, Kai Wang, Huazhu Fu
Abstract / 摘要
EnglishDiabetic Retinopathy (DR) grading is challenging due to the presence of intra-class variations, small lesions and imbalanced data distributions. The key for solving fine-grained DR grading is to find more discriminative features corresponding to subtle visual differences, such as microaneurysms, hemorrhages and soft exudates. However, small lesions are quite difficult to identify using traditional convolutional neural networks (CNNs), and an imbalanced DR data distribution will cause the model to pay too much attention to DR grades with more samples, greatly affecting the final grading performance. In this article, we focus on developing an attention module to address these issues. Specifically, for imbalanced DR data distributions, we propose a novel Category Attention Block (CAB), which explores more discriminative region-wise features for each DR grade and treats each category equally. In order to capture more detailed small lesion information, we also propose the Global Attention Block (GAB), which can exploit detailed and class-agnostic global attention feature maps for fundus images. By aggregating the attention blocks with a backbone network, the CABNet is constructed for DR grading. The attention blocks can be applied to a wide range of backbone networks and trained efficiently in an end-to-end manner. Comprehensive experiments are conducted on three publicly available datasets, showing that CABNet produces significant performance improvements for existing state-of-the-art deep architectures with few additional parameters and achieves the state-of-the-art results for DR grading. Code and models will be available at https://github.com/he2016012996/CABnet.
Author Info / 作者信息
Along He
College of Computer Science, Nankai University, Tianjin, China
机构中文翻译待生成或 IEEE 未提供机构
Tao Li
College of Computer Science, Nankai University, Tianjin, China
机构中文翻译待生成或 IEEE 未提供机构
Ning Li
College of Computer Science, Nankai University, Tianjin, China
机构中文翻译待生成或 IEEE 未提供机构
Kai Wang
College of Computer Science, Nankai University, Tianjin, China
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Huazhu Fu
Inception Institute of Artificial Intelligence (IIAI), Abu Dhabi, United Arab Emirates
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Translation: pending
AI: pending
Article 9195035
Jan. 2021 · Volume 40, Issue 1 · Vol. 40 · Issue 1 · DOI 10.1109/TMI.2020.3025087
Shumao Pang, Chunlan Pang, Lei Zhao, Yangfan Chen, Zhihai Su, Yujia Zhou, Meiyan Huang, Wei Yang
Abstract / 摘要
EnglishSpine parsing (i.e., multi-class segmentation of vertebrae and intervertebral discs (IVDs)) for volumetric magnetic resonance (MR) image plays a significant role in various spinal disease diagnoses and treatments of spine disorders, yet is still a challenge due to the inter-class similarity and intra-class variation of spine images. Existing fully convolutional network based methods failed to expl...
Author Info / 作者信息
Shumao Pang
Affiliation not provided by IEEE Xplore
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Chunlan Pang
Affiliation not provided by IEEE Xplore
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Lei Zhao
Affiliation not provided by IEEE Xplore
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Yangfan Chen
Affiliation not provided by IEEE Xplore
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Zhihai Su
Affiliation not provided by IEEE Xplore
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Yujia Zhou
Affiliation not provided by IEEE Xplore
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Meiyan Huang
Affiliation not provided by IEEE Xplore
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Wei Yang
Affiliation not provided by IEEE Xplore
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Translation: pending
AI: pending
Article 9201093
Jan. 2021 · Volume 40, Issue 1 · Vol. 40 · Issue 1 · DOI 10.1109/TMI.2020.3027341
Huisi Wu, Junquan Pan, Zhuoying Li, Zhenkun Wen, Jing Qin
Abstract / 摘要
EnglishWe present a convolutional neural network (CNN) equipped with a novel and efficient adaptive dual attention module (ADAM) for automated skin lesion segmentation from dermoscopic images, which is an essential yet challenging step for the development of a computer-assisted skin disease diagnosis system. The proposed ADAM has three compelling characteristics. First, we integrate two global context mo...
Author Info / 作者信息
Huisi Wu
Affiliation not provided by IEEE Xplore
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Junquan Pan
Affiliation not provided by IEEE Xplore
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Zhuoying Li
Affiliation not provided by IEEE Xplore
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Zhenkun Wen
Affiliation not provided by IEEE Xplore
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Jing Qin
Affiliation not provided by IEEE Xplore
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Translation: pending
AI: pending
Article 9207942
Jan. 2021 · Volume 40, Issue 1 · Vol. 40 · Issue 1 · DOI 10.1109/TMI.2020.3025064
Lequan Yu, Zhicheng Zhang, Xiaomeng Li, Lei Xing
Abstract / 摘要
EnglishComputed tomography (CT) has been widely used for medical diagnosis, assessment, and therapy planning and guidance. In reality, CT images may be affected adversely in the presence of metallic objects, which could lead to severe metal artifacts and influence clinical diagnosis or dose calculation in radiation therapy. In this article, we propose a generalizable framework for metal artifact reductio...
Author Info / 作者信息
Lequan Yu
Affiliation not provided by IEEE Xplore
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Zhicheng Zhang
Affiliation not provided by IEEE Xplore
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Xiaomeng Li
Affiliation not provided by IEEE Xplore
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Lei Xing
Affiliation not provided by IEEE Xplore
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Translation: pending
AI: pending
Article 9201079
Jan. 2021 · Volume 40, Issue 1 · Vol. 40 · Issue 1 · DOI 10.1109/TMI.2020.3024923
Qian Wang, Li Sun, Yan Wang, Mei Zhou, Menghan Hu, Jiangang Chen, Ying Wen, Qingli Li
Abstract / 摘要
EnglishSkin biopsy histopathological analysis is one of the primary methods used for pathologists to assess the presence and deterioration of melanoma in clinical. A comprehensive and reliable pathological analysis is the result of correctly segmented melanoma and its interaction with benign tissues, and therefore providing accurate therapy. In this study, we applied the deep convolution network on the h...
Author Info / 作者信息
Qian Wang
Affiliation not provided by IEEE Xplore
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Li Sun
Affiliation not provided by IEEE Xplore
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Yan Wang
Affiliation not provided by IEEE Xplore
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Mei Zhou
Affiliation not provided by IEEE Xplore
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Menghan Hu
Affiliation not provided by IEEE Xplore
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Jiangang Chen
Affiliation not provided by IEEE Xplore
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Ying Wen
Affiliation not provided by IEEE Xplore
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Qingli Li
Affiliation not provided by IEEE Xplore
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Translation: pending
AI: pending
Article 9201095
Jan. 2021 · Volume 40, Issue 1 · Vol. 40 · Issue 1 · DOI 10.1109/TMI.2020.3029161
Xuyang Cao, Houjin Chen, Yanfeng Li, Yahui Peng, Shu Wang, Lin Cheng
Abstract / 摘要
EnglishAccurate breast mass segmentation of automated breast ultrasound (ABUS) images plays a crucial role in 3D breast reconstruction which can assist radiologists in surgery planning. Although the convolutional neural network has great potential for breast mass segmentation due to the remarkable progress of deep learning, the lack of annotated data limits the performance of deep CNNs. In this article, ...
Author Info / 作者信息
Xuyang Cao
Affiliation not provided by IEEE Xplore
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Houjin Chen
Affiliation not provided by IEEE Xplore
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Yanfeng Li
Affiliation not provided by IEEE Xplore
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Yahui Peng
Affiliation not provided by IEEE Xplore
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Shu Wang
Affiliation not provided by IEEE Xplore
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Lin Cheng
Affiliation not provided by IEEE Xplore
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Translation: pending
AI: pending
Article 9214845
Jan. 2021 · Volume 40, Issue 1 · Vol. 40 · Issue 1 · DOI 10.1109/TMI.2020.3022591
Xiaoxi Pan, Trong-Le Phan, Mouloud Adel, Caroline Fossati, Thierry Gaidon, Julien Wojak, Eric Guedj
Abstract / 摘要
EnglishAlzheimer’s Disease (AD), one of the main causes of death in elderly people, is characterized by Mild Cognitive Impairment (MCI) at prodromal stage. Nevertheless, only part of MCI subjects could progress to AD. The main objective of this paper is thus to identify those who will develop a dementia of AD type among MCI patients. 18F-FluoroDeoxyGlucose Positron Emission Tomography (18F-FDG PET) serve...
Author Info / 作者信息
Xiaoxi Pan
Affiliation not provided by IEEE Xplore
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Trong-Le Phan
Affiliation not provided by IEEE Xplore
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Mouloud Adel
Affiliation not provided by IEEE Xplore
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Caroline Fossati
Affiliation not provided by IEEE Xplore
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Thierry Gaidon
Affiliation not provided by IEEE Xplore
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Julien Wojak
Affiliation not provided by IEEE Xplore
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Eric Guedj
Affiliation not provided by IEEE Xplore
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Translation: pending
AI: pending
Article 9187697
Jan. 2021 · Volume 40, Issue 1 · Vol. 40 · Issue 1 · DOI 10.1109/TMI.2020.3025065
Vineet Edupuganti, Morteza Mardani, Shreyas Vasanawala, John Pauly
Abstract / 摘要
EnglishReliable MRI is crucial for accurate interpretation in therapeutic and diagnostic tasks. However, undersampling during MRI acquisition as well as the overparameterized and non-transparent nature of deep learning (DL) leaves substantial uncertainty about the accuracy of DL reconstruction. With this in mind, this study aims to quantify the uncertainty in image recovery with DL models. To this end, w...
Author Info / 作者信息
Vineet Edupuganti
Affiliation not provided by IEEE Xplore
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Morteza Mardani
Affiliation not provided by IEEE Xplore
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Shreyas Vasanawala
Affiliation not provided by IEEE Xplore
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John Pauly
Affiliation not provided by IEEE Xplore
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Translation: pending
AI: pending
Article 9201098
Jan. 2021 · Volume 40, Issue 1 · Vol. 40 · Issue 1 · DOI 10.1109/TMI.2020.3025308
Yutong Xie, Jianpeng Zhang, Hao Lu, Chunhua Shen, Yong Xia
Abstract / 摘要
EnglishMedical image segmentation is an essential task in computer-aided diagnosis. Despite their prevalence and success, deep convolutional neural networks (DCNNs) still need to be improved to produce accurate and robust enough segmentation results for clinical use. In this paper, we propose a novel and generic framework called Segmentation-Emendation-reSegmentation-Verification (SESV) to improve the ac...
Author Info / 作者信息
Yutong Xie
Affiliation not provided by IEEE Xplore
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Jianpeng Zhang
Affiliation not provided by IEEE Xplore
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Hao Lu
Affiliation not provided by IEEE Xplore
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Chunhua Shen
Affiliation not provided by IEEE Xplore
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Yong Xia
Affiliation not provided by IEEE Xplore
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Translation: pending
AI: pending
Article 9201384
Jan. 2021 · Volume 40, Issue 1 · Vol. 40 · Issue 1 · DOI 10.1109/TMI.2020.3027442
T. Collins, D. Pizarro, S. Gasparini, N. Bourdel, P. Chauvet, M. Canis, L. Calvet, A. Bartoli
Abstract / 摘要
EnglishA major research area in Computer Assisted Intervention (CAI) is to aid laparoscopic surgery teams with Augmented Reality (AR) guidance. This involves registering data from other modalities such as MR and fusing it with the laparoscopic video in real-time, to reveal the location of hidden critical structures. We present the first system for AR guided laparoscopic surgery of the uterus. This works ...
Author Info / 作者信息
T. Collins
Affiliation not provided by IEEE Xplore
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D. Pizarro
Affiliation not provided by IEEE Xplore
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S. Gasparini
Affiliation not provided by IEEE Xplore
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N. Bourdel
Affiliation not provided by IEEE Xplore
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P. Chauvet
Affiliation not provided by IEEE Xplore
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M. Canis
Affiliation not provided by IEEE Xplore
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L. Calvet
Affiliation not provided by IEEE Xplore
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A. Bartoli
Affiliation not provided by IEEE Xplore
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Translation: pending
AI: pending
Article 9207920
Jan. 2021 · Volume 40, Issue 1 · Vol. 40 · Issue 1 · DOI 10.1109/TMI.2020.3023466
Dongnan Liu, Donghao Zhang, Yang Song, Fan Zhang, Lauren O’Donnell, Heng Huang, Mei Chen, Weidong Cai
Abstract / 摘要
EnglishIn this work, we present an unsupervised domain adaptation (UDA) method, named Panoptic Domain Adaptive Mask R-CNN (PDAM), for unsupervised instance segmentation in microscopy images. Since there currently lack methods particularly for UDA instance segmentation, we first design a Domain Adaptive Mask R-CNN (DAM) as the baseline, with cross-domain feature alignment at the image and instance levels....
Author Info / 作者信息
Dongnan Liu
Affiliation not provided by IEEE Xplore
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Donghao Zhang
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Yang Song
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Fan Zhang
Affiliation not provided by IEEE Xplore
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Lauren O’Donnell
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Heng Huang
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Mei Chen
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Weidong Cai
Affiliation not provided by IEEE Xplore
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Translation: pending
AI: pending
Article 9195030
Jan. 2021 · Volume 40, Issue 1 · Vol. 40 · Issue 1 · DOI 10.1109/TMI.2020.3024097
Nilesh A. Kande, Rupali Dakhane, Ambedkar Dukkipati, Phaneendra Kumar Yalavarthy
Abstract / 摘要
EnglishOptical coherence tomography (OCT) is a standard diagnostic imaging method for assessment of ophthalmic diseases. The speckle noise present in the high-speed OCT images hampers its clinical utility, especially in Spectral-Domain Optical Coherence Tomography (SDOCT). In this work, a new deep generative model, called as SiameseGAN, for denoising Low signal-to-noise ratio (LSNR) B-scans of SDOCT has ...
Author Info / 作者信息
Nilesh A. Kande
Affiliation not provided by IEEE Xplore
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Rupali Dakhane
Affiliation not provided by IEEE Xplore
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Ambedkar Dukkipati
Affiliation not provided by IEEE Xplore
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Phaneendra Kumar Yalavarthy
Affiliation not provided by IEEE Xplore
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Translation: pending
AI: pending
Article 9195885
Jan. 2021 · Volume 40, Issue 1 · Vol. 40 · Issue 1 · DOI 10.1109/TMI.2020.3025080
Michael Kircher, Gunnar Elke, Birgit Stender, María Hernández Mesa, Felix Schuderer, Olaf Dössel, Matthew K. Fuld, Ahmed F. Halaweish
Abstract / 摘要
EnglishElectrical impedance tomography is clinically used to trace ventilation related changes in electrical conductivity of lung tissue. Estimating regional pulmonary perfusion using electrical impedance tomography is still a matter of research. To support clinical decision making, reliable bedside information of pulmonary perfusion is needed. We introduce a method to robustly detect pulmonary perfusion...
Author Info / 作者信息
Michael Kircher
Affiliation not provided by IEEE Xplore
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Gunnar Elke
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Birgit Stender
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
María Hernández Mesa
Affiliation not provided by IEEE Xplore
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Felix Schuderer
Affiliation not provided by IEEE Xplore
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Olaf Dössel
Affiliation not provided by IEEE Xplore
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Matthew K. Fuld
Affiliation not provided by IEEE Xplore
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Ahmed F. Halaweish
Affiliation not provided by IEEE Xplore
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Translation: pending
AI: pending
Article 9201018
Jan. 2021 · Volume 40, Issue 1 · Vol. 40 · Issue 1 · DOI 10.1109/TMI.2020.3022968
Ke Lei, Morteza Mardani, John M. Pauly, Shreyas S. Vasanawala
Abstract / 摘要
EnglishLack of ground-truth MR images impedes the common supervised training of neural networks for image reconstruction. To cope with this challenge, this article leverages unpaired adversarial training for reconstruction networks, where the inputs are undersampled k-space and naively reconstructed images from one dataset, and the labels are high-quality images from another dataset. The reconstruction n...
Author Info / 作者信息
Ke Lei
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Morteza Mardani
Affiliation not provided by IEEE Xplore
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John M. Pauly
Affiliation not provided by IEEE Xplore
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Shreyas S. Vasanawala
Affiliation not provided by IEEE Xplore
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Translation: pending
AI: pending
Article 9193976
Jan. 2021 · Volume 40, Issue 1 · Vol. 40 · Issue 1 · DOI 10.1109/TMI.2020.3029205
Haikun Qi, Niccolo Fuin, Gastao Cruz, Jiazhen Pan, Thomas Kuestner, Aurelien Bustin, René M. Botnar, Claudia Prieto
Abstract / 摘要
EnglishNon-rigid motion-corrected reconstruction has been proposed to account for the complex motion of the heart in free-breathing 3D coronary magnetic resonance angiography (CMRA). This reconstruction framework requires efficient and accurate estimation of non-rigid motion fields from undersampled images at different respiratory positions (or bins). However, state-of-the-art registration methods can be...
Author Info / 作者信息
Haikun Qi
Affiliation not provided by IEEE Xplore
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Niccolo Fuin
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Gastao Cruz
Affiliation not provided by IEEE Xplore
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Jiazhen Pan
Affiliation not provided by IEEE Xplore
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Thomas Kuestner
Affiliation not provided by IEEE Xplore
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Aurelien Bustin
Affiliation not provided by IEEE Xplore
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René M. Botnar
Affiliation not provided by IEEE Xplore
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Claudia Prieto
Affiliation not provided by IEEE Xplore
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Translation: pending
AI: pending
Article 9215010
Jan. 2021 · Volume 40, Issue 1 · Vol. 40 · Issue 1 · DOI 10.1109/TMI.2020.3026261
Siqi Liu, Arnaud Arindra Adiyoso Setio, Florin C. Ghesu, Eli Gibson, Sasa Grbic, Bogdan Georgescu, Dorin Comaniciu
Abstract / 摘要
EnglishDetecting malignant pulmonary nodules at an early stage can allow medical interventions which may increase the survival rate of lung cancer patients. Using computer vision techniques to detect nodules can improve the sensitivity and the speed of interpreting chest CT for lung cancer screening. Many studies have used CNNs to detect nodule candidates. Though such approaches have been shown to outper...
Author Info / 作者信息
Siqi Liu
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Arnaud Arindra Adiyoso Setio
Affiliation not provided by IEEE Xplore
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Florin C. Ghesu
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Eli Gibson
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Sasa Grbic
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Bogdan Georgescu
Affiliation not provided by IEEE Xplore
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Dorin Comaniciu
Affiliation not provided by IEEE Xplore
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Translation: pending
AI: pending
Article 9204673
Jan. 2021 · Volume 40, Issue 1 · Vol. 40 · Issue 1 · DOI 10.1109/TMI.2020.3022693
Jun Ma, Jian He, Xiaoping Yang
Abstract / 摘要
EnglishMost existing CNNs-based segmentation methods rely on local appearances learned on the regular image grid, without consideration of the object global information. This article aims to embed the object global geometric information into a learning framework via the classical geodesic active contours (GAC). We propose a level set function (LSF) regression network, supervised by the segmentation groun...
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Jun Ma
Affiliation not provided by IEEE Xplore
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Jian He
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Xiaoping Yang
Affiliation not provided by IEEE Xplore
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AI: pending
Article 9187860
Jan. 2021 · Volume 40, Issue 1 · Vol. 40 · Issue 1 · DOI 10.1109/TMI.2020.3021493
Yi Jiang, Weixun Chen, Min Liu, Yaonan Wang, Erik Meijering
Abstract / 摘要
EnglishThe morphology reconstruction (tracing) of neurons in 3D microscopy images is important to neuroscience research. However, this task remains very challenging because of the low signal-to-noise ratio (SNR) and the discontinued segments of neurite patterns in the images. In this paper, we present a neuronal structure segmentation method based on the ray-shooting model and the Long Short-Term Memory ...
Author Info / 作者信息
Yi Jiang
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Weixun Chen
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Min Liu
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Yaonan Wang
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 9186077
Jan. 2021 · Volume 40, Issue 1 · Vol. 40 · Issue 1 · DOI 10.1109/TMI.2020.3029013
Syed Ahmed Nadeem, Eric A. Hoffman, Jessica C. Sieren, Alejandro P. Comellas, Surya P. Bhatt, Igor Z. Barjaktarevic, Fereidoun Abtin, Punam K. Saha
Abstract / 摘要
EnglishChronic obstructive pulmonary disease (COPD) is a common lung disease, and quantitative CT-based bronchial phenotypes are of increasing interest as a means of exploring COPD sub-phenotypes, establishing disease progression, and evaluating intervention outcomes. Reliable, fully automated, and accurate segmentation of pulmonary airway trees is critical to such exploration. We present a novel approac...
Author Info / 作者信息
Syed Ahmed Nadeem
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Eric A. Hoffman
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Jessica C. Sieren
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Alejandro P. Comellas
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Surya P. Bhatt
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Igor Z. Barjaktarevic
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Fereidoun Abtin
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Punam K. Saha
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 9214465
Jan. 2021 · Volume 40, Issue 1 · Vol. 40 · Issue 1 · DOI 10.1109/TMI.2020.3023329
Mathias Davids, Bastien Guérin, Valerie Klein, Lawrence L. Wald
Abstract / 摘要
EnglishPeripheral Nerve Stimulation (PNS) limits the acquisition rate of Magnetic Resonance Imaging data for fast sequences employing powerful gradient systems. The PNS characteristics are currently assessed after the coil design phase in experimental stimulation studies using constructed coil prototypes. This makes it difficult to find design modifications that can reduce PNS. Here, we demonstrate a dir...
Author Info / 作者信息
Mathias Davids
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Bastien Guérin
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Valerie Klein
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Lawrence L. Wald
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 9194994
Jan. 2021 · Volume 40, Issue 1 · Vol. 40 · Issue 1 · DOI 10.1109/TMI.2020.3025133
Xu Chen, Chunfeng Lian, Li Wang, Hannah Deng, Tianshu Kuang, Steve Fung, Jaime Gateno, Pew-Thian Yap
Abstract / 摘要
EnglishAn increasing number of studies are leveraging unsupervised cross-modality synthesis to mitigate the limited label problem in training medical image segmentation models. They typically transfer ground truth annotations from a label-rich imaging modality to a label-lacking imaging modality, under an assumption that different modalities share the same anatomical structure information. However, since...
Author Info / 作者信息
Xu Chen
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
Li Wang
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
Tianshu Kuang
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Steve Fung
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
Pew-Thian Yap
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 9201096
Jan. 2021 · Volume 40, Issue 1 · Vol. 40 · Issue 1 · DOI 10.1109/TMI.2020.3021254
Jia-Jun Qiu, Jin Yin, Wei Qian, Jin-Heng Liu, Zi-Xing Huang, Hao-Peng Yu, Lin Ji, Xiao-Xi Zeng
Abstract / 摘要
EnglishEarly screening of PDAC (pancreatic ductal adenocarcinoma) based on plain CT (computed tomography) images is of great significance. Therefore, this work conducted a radiomics-aided diagnosis analysis of PDAC based on plain CT images. We explored a novel MSTA (multiresolution-statistical texture analysis) architecture to extract texture features and built machine learning models to classify PDACs a...
Author Info / 作者信息
Jia-Jun Qiu
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Jin Yin
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Wei Qian
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Jin-Heng Liu
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Zi-Xing Huang
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Hao-Peng Yu
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Lin Ji
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Xiao-Xi Zeng
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 9184810
Jan. 2021 · Volume 40, Issue 1 · Vol. 40 · Issue 1 · DOI 10.1109/TMI.2020.3025517
Shuai Wang, Mingxia Liu, Jun Lian, Dinggang Shen
Abstract / 摘要
EnglishAccurate segmentation of the prostate and organs at risk (OARs, e.g., bladder and rectum) in male pelvic CT images is a critical step for prostate cancer radiotherapy. Unfortunately, the unclear organ boundary and large shape variation make the segmentation task very challenging. Previous studies usually used representations defined directly on unclear boundaries as context information to guide se...
Author Info / 作者信息
Shuai Wang
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Mingxia Liu
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Jun Lian
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
Translation: pending
AI: pending
Article 9201159
Jan. 2021 · Volume 40, Issue 1 · Vol. 40 · Issue 1 · DOI 10.1109/TMI.2020.3024264
Klaudius Scheufele, Shashank Subramanian, George Biros
Abstract / 摘要
EnglishOur objective is the calibration of mathematical tumor growth models from a single multiparametric scan. The target problem is the analysis of preoperative Glioblastoma (GBM) scans. To this end, we present a fully automatic tumor-growth calibration methodology that integrates a single-species reaction-diffusion partial differential equation (PDE) model for tumor progression with multiparametric Ma...
Author Info / 作者信息
Klaudius Scheufele
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Shashank Subramanian
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
George Biros
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 9197710
Jan. 2021 · Volume 40, Issue 1 · Vol. 40 · Issue 1 · DOI 10.1109/TMI.2020.3025608
Feng Liu, Li Wang, Yifei Lou, Ren-Cang Li, Patrick L. Purdon
Abstract / 摘要
EnglishBrain source imaging is an important method for noninvasively characterizing brain activity using Electroencephalogram (EEG) or Magnetoencephalography (MEG) recordings. Traditional EEG/MEG Source Imaging (ESI) methods usually assume the source activities at different time points are unrelated, and do not utilize the temporal structure in the source activation, making the ESI analysis sensitive to ...
Author Info / 作者信息
Feng Liu
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Li Wang
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Yifei Lou
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Ren-Cang Li
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Patrick L. Purdon
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 9201541