7 Tesla Quantitative MRI and Machine Learning for Exploratory Motor Subtype Stratification and Diagnosis in Parkinson's Disease
7特斯拉定量MRI与机器学习用于帕金森病运动亚型分层和探索性诊断
Anne Louise Kristoffersen, Runa Geirmundsdatter Unsgård, Marc-Antoine Fortin, Ingrid Gylterud Kvålsgard, Kjersti Eline Stige, Thanh Pierre Doan, Erik Magnus Berntsen, Charalampos Tzoulis, Pål Erik Goa
From Prompt Optimization to Multi-Dimensional Credibility Evaluation: Enhancing Trustworthiness of Chinese LLM-Generated Liver MRI Reports -- with Preliminary Extension to Lung Cancer
机构
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Yu-Yue Pathology Research Center, Jinfeng Laboratory, Chongqing, China(渝粤病理研究所,金风实验室,重庆,中国)
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T Magnetic Resonance Imaging Translational Medical Center, Department of Radiology, Southwest Hospital, Army Medical University, Chongqing, China(7T磁共振成像转化医学中心,放射科,西南医院,中国人民解放军军医大学,重庆,中国)
CommentsWithdrawn by the authors because the current version requires substantial revision in the description of the experimental settings and data preprocessing procedures. The manuscript should not be cited in its current form
机构
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Kwame Nkrumah University of Science and Technology(科拉努姆大学科学与技术学院)
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University of Catania(卡塔尼亚大学)
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The Hong Kong University of Science and Technology(香港科学与技术大学)
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Medical Artificial Intelligence Lab(医学人工智能实验室)
Mohammad Salmanpour, Mehrdad Oveisi, Isaac Shiri, Arman Rahmim
机构
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Department of Basic and Translational Research, BC Cancer Research Institute(基础与转化研究部,BC癌症研究中心)
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Department of Radiology, University of British Columbia(放射科,不列颠哥伦比亚大学)
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Technological Virtual Collaboration (TECVICO Corp.)(技术虚拟协作(TECVICO公司))
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Department of Computer Science, University of British Columbia(计算机科学系,不列颠哥伦比亚大学)
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Department of Cardiology, Inselspital, Bern University Hospital, University of Bern(心脏病学部,Inselspital,伯恩大学医院,伯恩大学)
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Department of Digital Medicine, University of Bern(数字医学系,伯恩大学)
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Departments of Physics & Biomedical Engineering, University of British Columbia(物理学与生物医学工程系,不列颠哥伦比亚大学)
Non-intrusive Body Composition Assessment from Full-body mmWave Scans
基于全身毫米波扫描的非侵入性身体成分评估
Miriam Senne, Benjamin D. Killeen, Tony Danjun Wang, Nassir Navab
机构
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Chair for Computer Aided Medical Procedures(计算机辅助医疗程序研究所)
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Technical University of Munich(慕尼黑技术大学)
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Munich Center for Machine Learning(慕尼黑机器学习中心)
Fast and Robust Diffusion Posterior Sampling for MR Image Reconstruction Using the Preconditioned Unadjusted Langevin Algorithm
使用预条件未调整朗之万算法实现快速且鲁棒的MR图像重建扩散后验采样
Moritz Blumenthal, Tina Holliber, Jonathan I. Tamir, Martin Uecker
机构
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Institute of Biomedical Imaging, Graz University of Technology, Graz, Austria
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Department of Radiology, Boston Children's Hospital, Harvard Medical School, Boston, USA
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Chandra Family Department of Electrical Engineering, University of Texas at Austin, USA
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Department of Diagnostic Medicine, Dell Medical School, University of Texas at Austin, USA
DUCX: Decomposing Unfairness in Tool-Using Chest X-ray Agents
DUCX:分解使用工具的胸部X光代理中的不公平性
Zikang Xu, Ruinan Jin, Xiaoxiao Li
机构
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Institute of Artificial Intelligence, Hefei Comprehensive National Science Center, Anhui, China(人工智能研究所,合肥国家科学中心,安徽,中国)
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The University of British Columbia, Vancouver, BC V6Z 1Z4, Canada(不列颠哥伦比亚大学,温哥华,BC V6Z 1Z4,加拿大)
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Vector Institute, Toronto, ON M5G 1M1, Canada(向量研究所,多伦多,ON M5G 1M1,加拿大)
Interpretable and backpropagation-free Green Learning for efficient multi-task echocardiographic segmentation and classification
可解释且无需反向传播的绿色学习用于高效多任务超声心动图分割与分类
Jyun-Ping Kao, Jiaxin Yang, C. -C. Jay Kuo, Jonghye Woo
机构
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Harvard Medical School and Massachusetts General Hospital(哈佛医学院和麻省总医院)
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Graduate Institute of Biomedical Electronics and Bioinformatics(生物医学电子与生物信息学研究生院)
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University of Southern California(南加州大学)
CommentsAccepted for publication in APSIPA Transactions on Signal and Information Processing. Jyun-Ping Kao and Jiaxing Yang contributed equally to this work. C.-C. Jay Kuo and Jonghye Woo are the senior authors
K-U-KAN: Koopman-Enhanced U-KAN for 3D Dental Reconstruction from a Single Panoramic X-ray Radiograph
K-U-KAN: 基于Koopman增强的U-KAN用于单张全景X射线片的三维牙齿重建
Bikram Keshari Parida, Abhijit Sen, Wonsang You
机构
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Artificial Intelligence \& Image Processing Lab., Department of Information \& Communication Engineering, Sun Moon University, Asan-Si, South Korea
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Department of Physics
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Engineering Physics, Tulane University, New Orleans, LA, USA