Earlier collected articles较早收录文章
Feb. 2020 · Volume 39, Issue 2 · Vol. 39 · Issue 2 · DOI 10.1109/TMI.2019.2930068
Davood Karimi, Septimiu E. Salcudean
Abstract / 摘要
EnglishThe Hausdorff Distance (HD) is widely used in evaluating medical image segmentation methods. However, the existing segmentation methods do not attempt to reduce HD directly. In this paper, we present novel loss functions for training convolutional neural network (CNN)-based segmentation methods with the goal of reducing HD directly. We propose three methods to estimate HD from the segmentation probability map produced by a CNN. One method makes use of the distance transform of the segmentation boundary. Another method is based on applying morphological erosion on the difference between the true and estimated segmentation maps. The third method works by applying circular/spherical convolution kernels of different radii on the segmentation probability maps. Based on these three methods for estimating HD, we suggest three loss functions that can be used for training to reduce HD. We use these loss functions to train CNNs for segmentation of the prostate, liver, and pancreas in ultrasound, magnetic resonance, and computed tomography images and compare the results with commonly-used loss functions. Our results show that the proposed loss functions can lead to approximately 18-45% reduction in HD without degrading other segmentation performance criteria such as the Dice similarity coefficient. The proposed loss functions can be used for training medical image segmentation methods in order to reduce the large segmentation errors.
Author Info / 作者信息
Davood Karimi
Department of Electrical and Computer Engineering, The University of British Columbia, Vancouver, Canada
机构中文翻译待生成或 IEEE 未提供机构
Septimiu E. Salcudean
Department of Electrical and Computer Engineering, The University of British Columbia, Vancouver, Canada
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Translation: pending
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Article 8767031
Feb. 2020 · Volume 39, Issue 2 · Vol. 39 · Issue 2 · DOI 10.1109/TMI.2019.2927101
Yoseo Han, Leonard Sunwoo, Jong Chul Ye
Abstract / 摘要
EnglishThe annihilating filter-based low-rank Hankel matrix approach (ALOHA) is one of the state-of-the-art compressed sensing approaches that directly interpolates the missing ${k}$ -space data using low-rank Hankel matrix completion. The success of ALOHA is due to the concise signal representation in the ${k}$ -space domain, thanks to the duality between structured low-rankness in the ${k}$ -space d...
Author Info / 作者信息
Yoseo Han
Affiliation not provided by IEEE Xplore
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Leonard Sunwoo
Affiliation not provided by IEEE Xplore
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Jong Chul Ye
Affiliation not provided by IEEE Xplore
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Article 8756028
Feb. 2020 · Volume 39, Issue 2 · Vol. 39 · Issue 2 · DOI 10.1109/TMI.2019.2927226
Liu Li, Mai Xu, Hanruo Liu, Yang Li, Xiaofei Wang, Lai Jiang, Zulin Wang, Xiang Fan
Abstract / 摘要
EnglishGlaucoma is one of the leading causes of irreversible vision loss. Many approaches have recently been proposed for automatic glaucoma detection based on fundus images. However, none of the existing approaches can efficiently remove high redundancy in fundus images for glaucoma detection, which may reduce the reliability and accuracy of glaucoma detection. To avoid this disadvantage, this paper pro...
Author Info / 作者信息
Liu Li
Affiliation not provided by IEEE Xplore
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Mai Xu
Affiliation not provided by IEEE Xplore
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Hanruo Liu
Affiliation not provided by IEEE Xplore
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Yang Li
Affiliation not provided by IEEE Xplore
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Xiaofei Wang
Affiliation not provided by IEEE Xplore
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Lai Jiang
Affiliation not provided by IEEE Xplore
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Zulin Wang
Affiliation not provided by IEEE Xplore
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Xiang Fan
Affiliation not provided by IEEE Xplore
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Article 8756196
Feb. 2020 · Volume 39, Issue 2 · Vol. 39 · Issue 2 · DOI 10.1109/TMI.2019.2928790
Tae-Eui Kam, Han Zhang, Zhicheng Jiao, Dinggang Shen
Abstract / 摘要
EnglishWhile convolutional neural network (CNN) has been demonstrating powerful ability to learn hierarchical spatial features from medical images, it is still difficult to apply it directly to resting-state functional MRI (rs-fMRI) and the derived brain functional networks (BFNs). We propose a novel CNN framework to simultaneously learn embedded features from BFNs for brain disease diagnosis. Since BFNs...
Author Info / 作者信息
Tae-Eui Kam
Affiliation not provided by IEEE Xplore
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Han Zhang
Affiliation not provided by IEEE Xplore
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Zhicheng Jiao
Affiliation not provided by IEEE Xplore
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Dinggang Shen
Affiliation not provided by IEEE Xplore
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Article 8765628
Feb. 2020 · Volume 39, Issue 2 · Vol. 39 · Issue 2 · DOI 10.1109/TMI.2019.2928056
Haozhe Jia, Yong Xia, Yang Song, Donghao Zhang, Heng Huang, Yanning Zhang, Weidong Cai
Abstract / 摘要
EnglishAccurate and reliable segmentation of the prostate gland using magnetic resonance (MR) imaging has critical importance for the diagnosis and treatment of prostate diseases, especially prostate cancer. Although many automated segmentation approaches, including those based on deep learning have been proposed, the segmentation performance still has room for improvement due to the large variability in...
Author Info / 作者信息
Haozhe Jia
Affiliation not provided by IEEE Xplore
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Yong Xia
Affiliation not provided by IEEE Xplore
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Yang Song
Affiliation not provided by IEEE Xplore
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Donghao Zhang
Affiliation not provided by IEEE Xplore
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Heng Huang
Affiliation not provided by IEEE Xplore
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Yanning Zhang
Affiliation not provided by IEEE Xplore
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Weidong Cai
Affiliation not provided by IEEE Xplore
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Article 8759928
Feb. 2020 · Volume 39, Issue 2 · Vol. 39 · Issue 2 · DOI 10.1109/TMI.2019.2928229
Yue Zhou, Guoqi Li, Huiqi Li
Abstract / 摘要
EnglishCataract is the clouding of lens, which affects vision and it is the leading cause of blindness in the world's population. Accurate and convenient cataract detection and cataract severity evaluation will improve the situation. Automatic cataract detection and grading methods are proposed in this paper. With prior knowledge, the improved Haar features and visible structure features are combined as ...
Author Info / 作者信息
Yue Zhou
Affiliation not provided by IEEE Xplore
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Guoqi Li
Affiliation not provided by IEEE Xplore
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Huiqi Li
Affiliation not provided by IEEE Xplore
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Translation: pending
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Article 8759939
Feb. 2020 · Volume 39, Issue 2 · Vol. 39 · Issue 2 · DOI 10.1109/TMI.2019.2930679
Lingxi Xie, Qihang Yu, Yuyin Zhou, Yan Wang, Elliot K. Fishman, Alan L. Yuille
Abstract / 摘要
EnglishWe aim at segmenting a wide variety of organs, including tiny targets (e.g., adrenal gland), and neoplasms (e.g., pancreatic cyst), from abdominal CT scans. This is a challenging task in two aspects. First, some organs (e.g., the pancreas), are highly variable in both anatomy and geometry, and thus very difficult to depict. Second, the neoplasms often vary a lot in its size, shape, as well as its ...
Author Info / 作者信息
Lingxi Xie
Affiliation not provided by IEEE Xplore
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Qihang Yu
Affiliation not provided by IEEE Xplore
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Yuyin Zhou
Affiliation not provided by IEEE Xplore
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Yan Wang
Affiliation not provided by IEEE Xplore
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Elliot K. Fishman
Affiliation not provided by IEEE Xplore
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Alan L. Yuille
Affiliation not provided by IEEE Xplore
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Article 8769868
Feb. 2020 · Volume 39, Issue 2 · Vol. 39 · Issue 2 · DOI 10.1109/TMI.2019.2926501
Ranyang Li, Junjun Pan, Yaqing Si, Bin Yan, Yong Hu, Hong Qin
Abstract / 摘要
EnglishSpecular reflections (i.e., highlight) always exist in endoscopic images, and they can severely disturb surgeons’ observation and judgment. In an augmented reality (AR)-based surgery navigation system, the highlight may also lead to the failure of feature extraction or registration. In this paper, we propose an adaptive robust principal component analysis (Adaptive-RPCA) method to remove the specu...
Author Info / 作者信息
Ranyang Li
Affiliation not provided by IEEE Xplore
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Junjun Pan
Affiliation not provided by IEEE Xplore
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Yaqing Si
Affiliation not provided by IEEE Xplore
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Bin Yan
Affiliation not provided by IEEE Xplore
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Yong Hu
Affiliation not provided by IEEE Xplore
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Hong Qin
Affiliation not provided by IEEE Xplore
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Article 8754735
Feb. 2020 · Volume 39, Issue 2 · Vol. 39 · Issue 2 · DOI 10.1109/TMI.2019.2926492
Yitian Zhao, Jianyang Xie, Huaizhong Zhang, Yalin Zheng, Yifan Zhao, Hong Qi, Yangchun Zhao, Pan Su
Abstract / 摘要
EnglishThe estimation of vascular network topology in complex networks is important in understanding the relationship between vascular changes and a wide spectrum of diseases. Automatic classification of the retinal vascular trees into arteries and veins is of direct assistance to the ophthalmologist in terms of diagnosis and treatment of eye disease. However, it is challenging due to their projective am...
Author Info / 作者信息
Yitian Zhao
Affiliation not provided by IEEE Xplore
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Jianyang Xie
Affiliation not provided by IEEE Xplore
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Huaizhong Zhang
Affiliation not provided by IEEE Xplore
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Yalin Zheng
Affiliation not provided by IEEE Xplore
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Yifan Zhao
Affiliation not provided by IEEE Xplore
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Hong Qi
Affiliation not provided by IEEE Xplore
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Yangchun Zhao
Affiliation not provided by IEEE Xplore
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Pan Su
Affiliation not provided by IEEE Xplore
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Article 8754802
Feb. 2020 · Volume 39, Issue 2 · Vol. 39 · Issue 2 · DOI 10.1109/TMI.2019.2927289
Yizhi Chen, Yunhe Gao, Kang Li, Liang Zhao, Jun Zhao
Abstract / 摘要
EnglishAutomated identification and localization of vertebrae in spinal computed tomography (CT) imaging is a complicated hybrid task. This task requires detecting and indexing a long sequence in a 3-D image, and both image feature extraction and sequence modeling are needed to address the problem. In this paper, the powerful fully convolutional neural network (FCN) technique performs both of these tasks...
Author Info / 作者信息
Yizhi Chen
Affiliation not provided by IEEE Xplore
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Yunhe Gao
Affiliation not provided by IEEE Xplore
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Kang Li
Affiliation not provided by IEEE Xplore
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Liang Zhao
Affiliation not provided by IEEE Xplore
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Jun Zhao
Affiliation not provided by IEEE Xplore
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Translation: pending
AI: pending
Article 8756197
Feb. 2020 · Volume 39, Issue 2 · Vol. 39 · Issue 2 · DOI 10.1109/TMI.2019.2926568
Qiufu Li, Linlin Shen
Abstract / 摘要
EnglishDigital reconstruction or tracing of 3D neuron is essential for understanding the brain functions. While existing automatic tracing algorithms work well for the clean neuronal image with a single neuron, they are not robust to trace the neuron surrounded by nerve fibers. We propose a 3D U-Net-based network, namely 3D U-Net Plus, to segment the neuron from the surrounding fibers before the applicat...
Author Info / 作者信息
Qiufu Li
Affiliation not provided by IEEE Xplore
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Linlin Shen
Affiliation not provided by IEEE Xplore
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Translation: pending
AI: pending
Article 8758392
Feb. 2020 · Volume 39, Issue 2 · Vol. 39 · Issue 2 · DOI 10.1109/TMI.2019.2929959
Gemeng Zhang, Biao Cai, Aiying Zhang, Julia M. Stephen, Tony W. Wilson, Vince D. Calhoun, Yu-Ping Wang
Abstract / 摘要
EnglishEstimating dynamic functional network connectivity (dFNC) of the brain from functional magnetic resonance imaging (fMRI) data can reveal both spatial and temporal organization and can be applied to track the developmental trajectory of brain maturity as well as to study mental illness. Resting state fMRI (rs-fMRI) is regarded as a promising task since it reflects the spontaneous brain activity wit...
Author Info / 作者信息
Gemeng Zhang
Affiliation not provided by IEEE Xplore
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Biao Cai
Affiliation not provided by IEEE Xplore
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Aiying Zhang
Affiliation not provided by IEEE Xplore
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Julia M. Stephen
Affiliation not provided by IEEE Xplore
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Tony W. Wilson
Affiliation not provided by IEEE Xplore
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Vince D. Calhoun
Affiliation not provided by IEEE Xplore
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Yu-Ping Wang
Affiliation not provided by IEEE Xplore
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Translation: pending
AI: pending
Article 8766884
Feb. 2020 · Volume 39, Issue 2 · Vol. 39 · Issue 2 · DOI 10.1109/TMI.2019.2927436
Haoyin Zhou, Jayender Jagadeesan
Abstract / 摘要
EnglishWe propose an approach to reconstruct dense three-dimensional (3D) model of tissue surface from stereo optical videos in real-time, the basic idea of which is to first extract 3D information from video frames by using stereo matching, and then to mosaic the reconstructed 3D models. To handle the common low-texture regions on tissue surfaces, we propose effective post-processing steps for the local...
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Haoyin Zhou
Affiliation not provided by IEEE Xplore
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Jayender Jagadeesan
Affiliation not provided by IEEE Xplore
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Article 8756268
Feb. 2020 · Volume 39, Issue 2 · Vol. 39 · Issue 2 · DOI 10.1109/TMI.2019.2933656
Mira Valkonen, Jorma Isola, Onni Ylinen, Ville Muhonen, Anna Saxlin, Teemu Tolonen, Matti Nykter, Pekka Ruusuvuori
Abstract / 摘要
EnglishImmunohistochemistry (IHC) of ER, PR, and Ki-67 are routinely used assays in breast cancer diagnostics. Determination of the proportion of stained cells (labeling index) should be restricted on malignant epithelial cells, carefully avoiding tumor infiltrating stroma and inflammatory cells. Here, we developed a deep learning based digital mask for automated epithelial cell detection using fluoro-ch...
Author Info / 作者信息
Mira Valkonen
Affiliation not provided by IEEE Xplore
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Jorma Isola
Affiliation not provided by IEEE Xplore
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Onni Ylinen
Affiliation not provided by IEEE Xplore
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Ville Muhonen
Affiliation not provided by IEEE Xplore
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Anna Saxlin
Affiliation not provided by IEEE Xplore
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Teemu Tolonen
Affiliation not provided by IEEE Xplore
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Matti Nykter
Affiliation not provided by IEEE Xplore
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Pekka Ruusuvuori
Affiliation not provided by IEEE Xplore
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Translation: pending
AI: pending
Article 8790728
Feb. 2020 · Volume 39, Issue 2 · Vol. 39 · Issue 2 · DOI 10.1109/TMI.2019.2926437
Daniele Mammoli, Jeremy Gordon, Adam Autry, Peder E. Z. Larson, Yan Li, Hsin-Yu Chen, Brian Chung, Peter Shin
Abstract / 摘要
EnglishKinetic modeling of the in vivo pyruvate-to-lactate conversion is crucial to investigating aberrant cancer metabolism that demonstrates Warburg effect modifications. Non-invasive detection of alterations to metabolic flux might offer prognostic value and improve the monitoring of response to treatment. In this clinical research project, hyperpolarized [1-13C] pyruvate was intravenously injected in...
Author Info / 作者信息
Daniele Mammoli
Affiliation not provided by IEEE Xplore
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Jeremy Gordon
Affiliation not provided by IEEE Xplore
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Adam Autry
Affiliation not provided by IEEE Xplore
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Peder E. Z. Larson
Affiliation not provided by IEEE Xplore
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Yan Li
Affiliation not provided by IEEE Xplore
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Hsin-Yu Chen
Affiliation not provided by IEEE Xplore
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Brian Chung
Affiliation not provided by IEEE Xplore
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Peter Shin
Affiliation not provided by IEEE Xplore
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Translation: pending
AI: pending
Article 8753570
Feb. 2020 · Volume 39, Issue 2 · Vol. 39 · Issue 2 · DOI 10.1109/TMI.2019.2932014
Seongmoon Jung, Taeyun Kim, Wooseung Lee, Hyejin Kim, Hyun Suk Kim, Hyung-Jun Im, Sung-Joon Ye
Abstract / 摘要
EnglishDynamic in vivo biodistribution of gold nanoparticles (GNPs) in living mice was first successfully acquired by a pinhole X-ray fluorescence (XRF) imaging system using polychromatic X-rays. The system consisted of fan-beam X-rays to stimulate GNPs and a 2D cadmium zinc telluride (CZT) gamma camera to collect K-shell XRF photons emitted from the GNPs. 2D XRF images of kidney slices of three Balb/C m...
Author Info / 作者信息
Seongmoon Jung
Affiliation not provided by IEEE Xplore
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Taeyun Kim
Affiliation not provided by IEEE Xplore
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Wooseung Lee
Affiliation not provided by IEEE Xplore
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Hyejin Kim
Affiliation not provided by IEEE Xplore
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Hyun Suk Kim
Affiliation not provided by IEEE Xplore
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Hyung-Jun Im
Affiliation not provided by IEEE Xplore
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Sung-Joon Ye
Affiliation not provided by IEEE Xplore
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Translation: pending
AI: pending
Article 8781918
Feb. 2020 · Volume 39, Issue 2 · Vol. 39 · Issue 2 · DOI 10.1109/TMI.2019.2927199
Ivan S. Klyuzhin, Ju-Chieh Cheng, Connor Bevington, Vesna Sossi
Abstract / 摘要
EnglishApplication of kinetic modeling (KM) on a voxel level in dynamic PET images frequently suffers from high levels of noise, drastically reducing the precision of parametric image analysis. In this paper, we investigate the use of machine learning and artificial neural networks to denoise dynamic PET images. We train a deep denoising autoencoder (DAE) using noisy and noise-free spatiotemporal image p...
Author Info / 作者信息
Ivan S. Klyuzhin
Affiliation not provided by IEEE Xplore
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Ju-Chieh Cheng
Affiliation not provided by IEEE Xplore
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Connor Bevington
Affiliation not provided by IEEE Xplore
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Vesna Sossi
Affiliation not provided by IEEE Xplore
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Translation: pending
AI: pending
Article 8756077
Feb. 2020 · Volume 39, Issue 2 · Vol. 39 · Issue 2 · DOI 10.1109/TMI.2019.2898672
Hoonjae Lee, Julius Juhyun Chung, Joonyeol Lee, Seong-Gi Kim, Jae-Ho Han, Jaeseok Park
Abstract / 摘要
EnglishThis paper introduces a novel, model-based chemical exchange saturation transfer (CEST) magnetic resonance imaging (MRI), in which asymmetric spectra of interest are directly estimated from complete or incomplete measurements by incorporating subspace-based spectral signal decomposition into the measurement model of CEST MRI for a robust z-spectrum analysis. Spectral signals are decomposed into sy...
Author Info / 作者信息
Hoonjae Lee
Affiliation not provided by IEEE Xplore
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Julius Juhyun Chung
Affiliation not provided by IEEE Xplore
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Joonyeol Lee
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Seong-Gi Kim
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Jae-Ho Han
Affiliation not provided by IEEE Xplore
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Jaeseok Park
Affiliation not provided by IEEE Xplore
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AI: pending
Article 8640851
Feb. 2020 · Volume 39, Issue 2 · Vol. 39 · Issue 2 · DOI 10.1109/TMI.2019.2928740
Mucong Li, Bangxin Lan, Georgii Sankin, Yuan Zhou, Wei Liu, Jun Xia, Depeng Wang, Gregg Trahey
Abstract / 摘要
EnglishKidney stone disease is a major health problem worldwide. Shockwave lithotripsy (SWL), which uses high-energy shockwave pulses to break up kidney stones, is extensively used in clinic. However, despite its noninvasiveness, SWL can produce cavitation in vivo. The rapid expansion and violent collapse of cavitation bubbles in small blood vessels may result in renal vascular injury. To better understa...
Author Info / 作者信息
Mucong Li
Affiliation not provided by IEEE Xplore
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Bangxin Lan
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Georgii Sankin
Affiliation not provided by IEEE Xplore
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Yuan Zhou
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Wei Liu
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Jun Xia
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Depeng Wang
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Gregg Trahey
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 8762208
Feb. 2020 · Volume 39, Issue 2 · Vol. 39 · Issue 2 · DOI 10.1109/TMI.2018.2851194
Christian Wachinger, Matthew Toews, Georg Langs, William Wells, Polina Golland
Abstract / 摘要
EnglishWe introduce an approach for image segmentation based on sparse correspondences between keypoints in testing and training images. Keypoints represent automatically identified distinctive image locations, where each keypoint correspondence suggests a transformation between images. We use these correspondences to transfer the label maps of entire organs from the training images to the test image. Th...
Author Info / 作者信息
Christian Wachinger
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
Georg Langs
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
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 8398449
Feb. 2020 · Volume 39, Issue 2 · Vol. 39 · Issue 2 · DOI 10.1109/TMI.2019.2911482
Blake Schultze, Yair Censor, Paniz Karbasi, Keith E. Schubert, Reinhard W. Schulte
Abstract / 摘要
EnglishPrevious work has shown that total variation superiorization (TVS) improves reconstructed image quality in proton computed tomography (pCT). The structure of the TVS algorithm has evolved since then and this paper investigated if this new algorithmic structure provides additional benefits to pCT image quality. Structural and parametric changes introduced to the original TVS algorithm included: (1)...
Author Info / 作者信息
Blake Schultze
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Yair Censor
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Paniz Karbasi
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Keith E. Schubert
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Reinhard W. Schulte
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 8692608
Feb. 2020 · Volume 39, Issue 2 · Vol. 39 · Issue 2 · DOI 10.1109/TMI.2019.2926667
Aiying Zhang, Biao Cai, Wenxing Hu, Bochao Jia, Faming Liang, Tony W. Wilson, Julia M. Stephen, Vince D. Calhoun
Abstract / 摘要
EnglishAdolescence is a transitional period between the childhood and adulthood with physical changes, as well as increasing emotional development. Studies have shown that the emotional sensitivity is related to a second period of rapid brain growth. However, there is little focus on the trend of brain development during this period. In this paper, we aim to track functional brain connectivity developmen...
Author Info / 作者信息
Aiying Zhang
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Biao Cai
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Wenxing Hu
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Bochao Jia
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Faming Liang
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Tony W. Wilson
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Julia M. Stephen
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Vince D. Calhoun
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 8754707
Feb. 2020 · Volume 39, Issue 2 · Vol. 39 · Issue 2 · DOI 10.1109/TMI.2019.2928393
Suhanyaa Nitkunanantharajah, Guillaume Zahnd, Malini Olivo, Nassir Navab, Pouyan Mohajerani, Vasilis Ntziachristos
Abstract / 摘要
EnglishOptoacoustic (photoacoustic) mesoscopy offers unique capabilities in skin imaging and resolves skin features associated with detection, diagnosis, and management of disease. A critical first step in the quantitative analysis of clinical optoacoustic images is to identify the skin surface in a rapid, reliable, and automated manner. Nevertheless, most common edge- and surface-detection algorithms ca...
Author Info / 作者信息
Suhanyaa Nitkunanantharajah
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Guillaume Zahnd
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Malini Olivo
Affiliation not provided by IEEE Xplore
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Nassir Navab
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Pouyan Mohajerani
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Vasilis Ntziachristos
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 8760559
Feb. 2020 · Volume 39, Issue 2 · Vol. 39 · Issue 2 · DOI 10.1109/TMI.2019.2922615
G. A. M. Arkesteijn, D. H. J. Poot, M. A. Ikram, W. J. Niessen, L. J. Van Vliet, M. W. Vernooij, F. M. Vos
Abstract / 摘要
EnglishThe goal of this paper is to increase the statistical power of crossing-fiber statistics in voxelwise analyses of diffusion-weighted magnetic resonance imaging (DW-MRI) data. In the proposed framework, a fiber orientation atlas and a model complexity atlas were used to fit the ball-and-sticks model to diffusion-weighted images of subjects in a prospective population-based cohort study. Reproducibi...
Author Info / 作者信息
G. A. M. Arkesteijn
Affiliation not provided by IEEE Xplore
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D. H. J. Poot
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
M. A. Ikram
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
W. J. Niessen
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
L. J. Van Vliet
Affiliation not provided by IEEE Xplore
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M. W. Vernooij
Affiliation not provided by IEEE Xplore
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F. M. Vos
Affiliation not provided by IEEE Xplore
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Translation: pending
AI: pending
Article 8736508
Feb. 2020 · Volume 39, Issue 2 · Vol. 39 · Issue 2 · DOI 10.1109/TMI.2019.2962345
Zhenghan Fang, Yong Chen, Mingxia Liu, Lei Xiang, Qian Zhang, Qian Wang, Weili Lin, Dinggang Shen
Abstract / 摘要
EnglishIn the above paper [1], the acknowledgment of grant support is missing. The grant support should be: This work was supported in part by the NIH under Grant EB006733.
Author Info / 作者信息
Zhenghan Fang
Affiliation not provided by IEEE Xplore
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Yong Chen
Affiliation not provided by IEEE Xplore
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Mingxia Liu
Affiliation not provided by IEEE Xplore
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Lei Xiang
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Qian Zhang
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Qian Wang
Affiliation not provided by IEEE Xplore
机构中文翻译待生成或 IEEE 未提供机构
Weili Lin
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 8979462