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检索条件"机构=Biomedical Image Analysis and Machine Learning"
21 条 记 录,以下是1-10 订阅
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Subspace Clustering
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IEEE SIGNAL PROCESSING MAGAZINE 2011年 第2期28卷 52-68页
作者: Vidal, Rene He was coeditor of the book Dynamical Vision and has coauthored more than 100 articles in biomedical image analysis computer vision machine learning hybrid systems and robotics.
The past few years have witnessed an explosion in the availability of data from multiple sources and modalities. For example, millions of cameras have been installed in buildings, streets, airports, and cities around ... 详细信息
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Weakly Supervised Object Detection in Chest X-Rays with Differentiable ROI Proposal Networks and Soft ROI Pooling
arXiv
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arXiv 2024年
作者: Müller, Philip Meissen, Felix Kaissis, Georgios Rueckert, Daniel School of Computation Information and Technology TU Munich Garching85748 Germany The group for Reliable AI Institute for Machine Learning in Biomedical Imaging Helmholtz Munich Germany The Biomedical Image Analysis Group Imperial College London LondonSW7 2AZ United Kingdom
Weakly supervised object detection (WSup-OD) increases the usefulness and interpretability of image classification algorithms without requiring additional supervision. The successes of multiple instance learning in th... 详细信息
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Unsupervised Pathology Detection: A Deep Dive Into the State of the Art
arXiv
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arXiv 2023年
作者: Lagogiannis, Ioannis Meissen, Felix Kaissis, Georgios Rueckert, Daniel School of Computation Information and Technology TU Munich 85748 Garching and Klinikum rechts der Isar München81675 Germany The Biomedical Image Analysis Group Imperial College London LondonSW7 2AZ United Kingdom The Group for Reliable AI Institute for Machine Learning in Biomedical Imaging Helmholtz Zentrum München Germany
Deep unsupervised approaches are gathering increased attention for applications such as pathology detection and segmentation in medical images since they promise to alleviate the need for large labeled datasets and ar... 详细信息
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Evaluation of 3D GANs for Lung Tissue Modelling in Pulmonary CT
arXiv
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arXiv 2022年
作者: Ellis, Sam Martinez Manzanera, Octavio E. Baltatzis, Vasileios Nawaz, Ibrahim Nair, Arjun Le Folgoc, Loïc Desai, Sujal Glocker, Ben Schnabel, Julia A. School of Biomedical Engineering and Imaging Sciences King’s College London United Kingdom Biomedical Image Analysis Group Imperial College London United Kingdom Department of Radiology University College London United Kingdom The Royal Brompton & Harefield NHS Foundation Trust United Kingdom Institute of Machine Learning in Biomedical Imaging Helmholtz Center Munich Germany Faculty of Informatics Technical University of Munich Germany
Generative adversarial networks (GANs) are able to model accurately the distribution of complex, high-dimensional datasets, for example images. This characteristic makes high-quality GANs useful for unsupervised anoma... 详细信息
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Trainable Spectrally Initializable Matrix Transformations in Convolutional Neural Networks
Trainable Spectrally Initializable Matrix Transformations in...
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International Conference on Pattern Recognition
作者: Michele Alberti Angela Botros Narayan Schutz Rolf Ingold Marcus Liwicki Mathias Seuret Document Image and Voice Analysis Group (DIVA) University of Fribourg Switzerland V7 Ltd London United Kingdom ARTORG Center for Biomedical Engineering Research University of Bern Switzerland EISLAB Machine Learning Luleå University of Technology Sweden Pattern Recognition Lab Friedrich-Alexander-Universität Erlangen-Nürnberg Germany
In this work, we introduce a new architectural component to Neural Network (NN), i.e., trainable and spectrally initializable matrix transformations on feature maps. While previous literature has already demonstrated ... 详细信息
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A Self-Supervised image Registration Approach for Measuring Local Response Patterns in Metastatic Ovarian Cancer
arXiv
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arXiv 2024年
作者: Machado, Inês P. Reithmeir, Anna Kogl, Fryderyk Rundo, Leonardo Funingana, Gabriel Reinius, Marika Mungmeeprued, Gift Gao, Zeyu McCague, Cathal Kerfoot, Eric Woitek, Ramona Sala, Evis Ou, Yangming Brenton, James Schnabel, Julia Crispin, Mireia Department of Oncology University of Cambridge United Kingdom Cancer Research UK Cambridge Institute University of Cambridge United Kingdom Early Cancer Institute University of Cambridge United Kingdom School of Computation Information & Technology Technical University of Munich Germany Institute of Machine Learning in Biomedical Imaging Helmholtz Munich Germany Department of Information and Electrical Engineering University of Salerno Italy School of Biomedical Engineering & Imaging Sciences King’s College London United Kingdom Research Center for Medical Image Analysis and AI Danube University Austria Department of Radiologic Sciences Università Cattolica del Sacro Cuore Italy Department of Radiology Boston Children’s Hospital Harvard Medical School United States
High-grade serous ovarian carcinoma (HGSOC) is characterised by significant spatial and temporal heterogeneity, typically manifesting at an advanced metastatic stage. A major challenge in treating advanced HGSOC is ef... 详细信息
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The medical algorithmic audit (vol 4, pg e384, 2022)
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LANCET DIGITAL HEALTH 2022年 第6期4卷 E405-E405页
作者: Liu, X. Glocker, B. McCradden, M. M. Ghassemi, M. Denniston, A. K. Oakden-Rayner, L. Academic Unit of Ophthalmology Institute of Inflammation and Ageing College of Medical and Dental Sciences University of Birmingham UK Department of Ophthalmology University Hospitals Birmingham NHS Foundation Trust Birmingham UK Moorfields Eye Hospital NHS Foundation Trust London UK Health Data Research UK London UK Birmingham Health Partners Centre for Regulatory Science and Innovation University of Birmingham Birmingham UK Biomedical Image Analysis Group Department of Computing Imperial College London London UK The Hospital for Sick Children Toronto ON Canada Dalla Lana School of Public Health Toronto ON Canada Institute for Medical Engineering and Science and Department of Electrical Engineering and Computer Science Massachusetts Institute of Technology Cambridge MA USA National Institute of Health Research Biomedical Research Centre for Ophthalmology Moorfields Hospital London NHS Foundation Trust London UK University College London Institute of Ophthalmology London UK Australian Institute for Machine Learning University of Adelaide Adelaide SA Australia. lauren.oakden-rayner@adelaide.edu.au
Artificial intelligence systems for health care, like any other medical device, have the potential to fail. However, specific qualities of artificial intelligence systems, such as the tendency to learn spurious correl...
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Why is the winner the best?
arXiv
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arXiv 2023年
作者: Eisenmann, M. Reinke, A. Weru, V. Tizabi, M.D. Isensee, F. Adler, T.J. Ali, S. Andrearczyk, V. Aubreville, M. Baid, U. Bakas, S. Balu, N. Bano, S. Bernal, J. Bodenstedt, S. Casella, A. Cheplygina, V. Daum, M. de Bruijne, M. Depeursinge, A. Dorent, R. Egger, J. Ellis, D.G. Engelhardt, S. Ganz, M. Ghatwary, N. Girard, G. Godau, P. Gupta, A. Hansen, L. Harada, K. Heinrich, M. Heller, N. Hering, A. Huaulmé, A. Jannin, P. Kavur, A.E. Kodym, O. Kozubek, M. Li, J. Li, H. Ma, J. Martín-Isla, C. Menze, B. Noble, A. Oreiller, V. Padoy, N. Pati, S. Payette, K. Rädsch, T. Rafael-Patiño, J. Bawa, V. Singh Speidel, S. Sudre, C.H. van Wijnen, K. Wagner, M. Wei, D. Yamlahi, A. Yap, M.H. Yuan, C. Zenk, M. Zia, A. Zimmerer, D. Aydogan, D. Bhattarai, B. Bloch, L. Brüngel, R. Cho, J. Choi, C. Dou, Q. Ezhov, I. Friedrich, C.M. Fuller, C. Gaire, R.R. Galdran, A. Faura, Á. García Grammatikopoulou, M. Hong, S. Jahanifar, M. Jang, I. Kadkhodamohammadi, A. Kang, I. Kofler, F. Kondo, S. Kuijf, H. Li, M. Luu, M. Martinčič, T. Morais, P. Naser, M.A. Oliveira, B. Owen, D. Pang, S. Park, J. Park, S. Plotka, S. Puybareau, E. Rajpoot, N. Ryu, K. Saeed, N. Shephard, A. Shi, P. Štepec, D. Subedi, R. Tochon, G. Torres, H.R. Urien, H. Vilaça, J.L. Wahid, K.A. Wang, H. Wang, J. Wang, L. Wang, X. Wiestler, B. Wodzinski, M. Xia, F. Xie, J. Xiong, Z. Yang, S. Yang, Y. Zhao, Z. Maier-Hein, K. Jäger, P.F. Kopp-Schneider, A. Maier-Hein, L. Heidelberg Germany Heidelberg Germany Faculty of Mathematics and Computer Science Heidelberg University Heidelberg Germany Heidelberg Germany Heidelberg Germany School of Computing Faculty of Engineering and Physical Sciences University of Leeds Leeds United Kingdom Institute of Informatics School of Management HES-SO Valais-Wallis University of Applied Sciences and Arts Western Switzerland Sierre Switzerland Department of Nuclear Medicine and Molecular Imaging Lausanne University Hospital Lausanne Switzerland Technische Hochschule Ingolstadt Ingolstadt Germany University of Pennsylvania PhiladelphiaPA United States Department of Pathology and Laboratory Medicine Perelman School of Medicine University of Pennsylvania PhiladelphiaPA United States Department of Radiology Perelman School of Medicine University of Pennsylvania PhiladelphiaPA United States Department of Radiology University of Washington SeattleWA United States Department of Computer Science University College London London United Kingdom Universitat Autònoma de Barcelona & Computer Vision Center Barcelona Spain Dresden Dresden Germany Department of Advanced Robotics Istituto Italiano di Tecnologia Italy IT University of Copenhagen Copenhagen Denmark Department of General Visceral and Transplantation Surgery Heidelberg University Hospital Heidelberg Germany Biomedical Imaging Group Rotterdam Department of Radiology and Nuclear Medicine Erasmus MC Rotterdam Netherlands Department of Computer Science University of Copenhagen Copenhagen Denmark Sierre Switzerland Harvard Medical School Brigham and Women’s Hospital BostonMA United States School of Biomedical Engineering and Imaging Sciences King’s College London London United Kingdom Essen Germany University of Nebraska Medical Center OmahaNE United States Department of Internal Medicine III Heidelberg University Hospital Heidelberg Germany Neurobiology Research Unit Copenhagen University Hospital Rigshospitalet C
International benchmarking competitions have become fundamental for the comparative performance assessment of image analysis methods. However, little attention has been given to investigating what can be learnt from t... 详细信息
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SEX DIFFERENCES IN WHITE MATTER HYPERTENSITIES ARE MODIFIED BY MENOPAUSE: THE RHINELAND STUDY
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Cerebral Circulation: Cognition and Behavior 2024年 6卷 100110-100110页
作者: Lohner, Valerie Pehlivan, Gokhan Sanroma-Guëll, Gerard Miloschewski, Anne Schirmer, Markus D. Stöcker, Tony Reuter, Martin Breteler, Monique M.B. Population Health Sciences German Center for Neurodegenerative diseases (DZNE) Bonn Germany Statistics and Machine Learning German Center for Neurodegenerative Diseases (DZNE) Bonn Germany J. Philip Kistler Stroke Research Center Massachusetts General Hospital Harvard Medical School Boston Clinic for Neuroradiology University Hospital Bonn Germany MR Physics German Center for Neurodegenerative Diseases (DZNE) Bonn Germany Department of Physics and Astronomy University of Bonn Bonn Germany Image Analysis German Center for Neurodegenerative Diseases (DZNE) Bonn Germany A.A. Martinos Center for Biomedical Imaging Massachusetts General Hospital Boston Massachusetts Department of Radiology Harvard Medical School Boston Massachusetts USA Institute for Medical Biometry Informatics and Epidemiology (IMBIE) Faculty of Medicine University of Bonn Germany
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Why is the Winner the Best?
Why is the Winner the Best?
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Conference on Computer Vision and Pattern Recognition (CVPR)
作者: M. Eisenmann A. Reinke V. Weru M. D. Tizabi F. Isensee T. J. Adler S. Ali V. Andrearczyk M. Aubreville U. Baid S. Bakas N. Balu S. Bano J. Bernal S. Bodenstedt A. Casella V. Cheplygina M. Daum M. De Bruijne A. Depeursinge R. Dorent J. Egger D. G. Ellis S. Engelhardt M. Ganz N. Ghatwary G. Girard P. Godau A. Gupta L. Hansen K. Harada M. Heinrich N. Heller A. Hering A. Huaulmé P. Jannin A. E. Kavur O. Kodym M. Kozubek J. Li H. Li J. Ma C. Martín-Isla B. Menze A. Noble V. Oreiller N. Padoy S. Pati K. Payette T. Rädsch J. Rafael-Patiño V. Singh Bawa S. Speidel C. H. Sudre K. Van Wijnen M. Wagner D. Wei A. Yamlahi M. H. Yap C. Yuan M. Zenk A. Zia D. Zimmerer D. Aydogan B. Bhattarai L. Bloch R. Brüngel J. Cho C. Choi Q. Dou I. Ezhov C. M. Friedrich C. Fuller R. R. Gaire A. Galdran Á. García Faura M. Grammatikopoulou S. Hong M. Jahanifar I. Jang A. Kadkhodamohammadi I. Kang F. Kofler S. Kondo H. Kuijf M. Li M. Luu T. Martinčič P. Morais M. A. Naser B. Oliveira D. Owen S. Pang J. Park S. Park S. Płotka E. Puybareau N. Rajpoot K. Ryu N. Saeed A. Shephard P. Shi D. Štepec R. Subedi G. Tochon H. R. Torres H. Urien J. L. Vilaça K. A. Wahid H. Wang J. Wang L. Wang X. Wang B. Wiestler M. Wodzinski F. Xia J. Xie Z. Xiong S. Yang Y. Yang Z. Zhao K. Maier-Hein P. F. Jäger A. Kopp-Schneider L. Maier-Hein Division of Intelligent Medical Systems German Cancer Research Center (DKFZ) Heidelberg Germany Helmholtz Imaging German Cancer Research Center (DKFZ) Heidelberg Germany Faculty of Mathematics and Computer Science Heidelberg University Heidelberg Germany Division of Biostatistics German Cancer Research Center (DKFZ) Heidelberg Germany Division of Medical Image Computing German Cancer Research Center (DKFZ) Heidelberg Germany Faculty of Engineering and Physical Sciences School of Computing University of Leeds Leeds UK Institute of Informatics School of Management HES-SO Valais-Wallis University of Applied Sciences and Arts Western Switzerland Sierre Switzerland Department of Nuclear Medicine and Molecular Imaging Lausanne University Hospital Lausanne Switzerland Technische Hochschule Ingolstadt Ingolstadt Germany Center for Artificial Intelligence and Data Science for Integrated Diagnostics (AI2D) and Center for Biomedical Image Computing and Analytics (CBICA) University of Pennsylvania Philadelphia PA USA Department of Pathology and Laboratory Medicine Perelman School of Medicine University of Pennsylvania Philadelphia PA USA Department of Radiology Perelman School of Medicine University of Pennsylvania Philadelphia PA USA Department of Radiology University of Washington Seattle WA USA Department of Computer Science Wellcome/EPSRC Centre for Interventional and Surgical Sciences (WEISS) University College London London UK Universitat Autònoma de Barcelona & Computer Vision Center Barcelona Spain Division of Translational Surgical Oncology National Center for Tumor Diseases (NCT/UCC) Dresden Dresden Germany Department of Advanced Robotics Istituto Italiano di Tecnologia Italy Department of Electronics Information and Bioengineering Politecnico di Milano Milan Italy IT University of Copenhagen Copenhagen Denmark Department of General Visceral and Transplantation Surgery Heidelberg University Hospital Heidelberg Germany Department of Radiology and Nuc
International benchmarking competitions have become fundamental for the comparative performance assessment of image analysis methods. However, little attention has been given to investigating what can be learnt from t...
来源: 评论