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Radiology. Artificial Intelligence
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May 3, 2021
The Rebirth of CAD: How Is Modern AI Different from the CAD We Know?
Luke Oakden-Rayner
Academic Radiology
|
November 11, 2019
Exploring Large-scale Public Medical Image Datasets
Luke Oakden-Rayner
Radiology. Artificial Intelligence
|
May 3, 2021
Guidance for Interventional Trials Involving Artificial Intelligence
Hugh Harvey, Luke Oakden-Rayner
The Lancet. Digital Health
|
October 29, 2021
The false hope of current approaches to explainable artificial intelligence in health care
Marzyeh Ghassemi, Luke Oakden-Rayner, Andrew L Beam
International Journal of Epidemiology
|
June 6, 2018
Medical journals should embrace preprints to address the reproducibility crisis
Luke Oakden-Rayner, Andrew L Beam, Lyle J Palmer
Proceedings of the ACM Conference on Health, Inference, and Learning
|
November 16, 2020
Hidden Stratification Causes Clinically Meaningful Failures in Machine Learning for Medical Imaging
Luke Oakden-Rayner, Jared Dunnmon, Gustavo Carneiro, et al.
Stroke
|
January 18, 2019
Deep Learning Natural Language Processing Successfully Predicts the Cerebrovascular Cause of Transient Ischemic Attack-Like Presentations
Stephen Bacchi, Luke Oakden-Rayner, Toby Zerner, et al.
Academic Radiology
|
May 5, 2019
Deep Learning in the Prediction of Ischaemic Stroke Thrombolysis Functional Outcomes: A Pilot Study
Stephen Bacchi, Toby Zerner, Luke Oakden-Rayner, et al.
Journal of Medical Imaging and Radiation Oncology
|
July 12, 2021
Assessing the accuracy of <sup>68</sup> Ga-PSMA PET/CT compared with MRI in the initial diagnosis of prostate malignancy: A cohort analysis of 114 consecutive patients
Felix Paterson, Michelle Nottage, Michael Kitchener, et al.
Internal Medicine Journal
|
October 23, 2020
Machine learning in the prediction of medical inpatient length of stay
Stephen Bacchi, Yiran Tan, Luke Oakden-Rayner, et al.
Page
of 3
Search research articles
Search
Showing results (1-10 of 21) with videos related to
Sort By:
Page
of 3
Radiology. Artificial Intelligence
|
May 3, 2021
The Rebirth of CAD: How Is Modern AI Different from the CAD We Know?
Luke Oakden-Rayner
Academic Radiology
|
November 11, 2019
Exploring Large-scale Public Medical Image Datasets
Luke Oakden-Rayner
Radiology. Artificial Intelligence
|
May 3, 2021
Guidance for Interventional Trials Involving Artificial Intelligence
Hugh Harvey, Luke Oakden-Rayner
The Lancet. Digital Health
|
October 29, 2021
The false hope of current approaches to explainable artificial intelligence in health care
Marzyeh Ghassemi, Luke Oakden-Rayner, Andrew L Beam
International Journal of Epidemiology
|
June 6, 2018
Medical journals should embrace preprints to address the reproducibility crisis
Luke Oakden-Rayner, Andrew L Beam, Lyle J Palmer
Proceedings of the ACM Conference on Health, Inference, and Learning
|
November 16, 2020
Hidden Stratification Causes Clinically Meaningful Failures in Machine Learning for Medical Imaging
Luke Oakden-Rayner, Jared Dunnmon, Gustavo Carneiro, et al.
Stroke
|
January 18, 2019
Deep Learning Natural Language Processing Successfully Predicts the Cerebrovascular Cause of Transient Ischemic Attack-Like Presentations
Stephen Bacchi, Luke Oakden-Rayner, Toby Zerner, et al.
Academic Radiology
|
May 5, 2019
Deep Learning in the Prediction of Ischaemic Stroke Thrombolysis Functional Outcomes: A Pilot Study
Stephen Bacchi, Toby Zerner, Luke Oakden-Rayner, et al.
Journal of Medical Imaging and Radiation Oncology
|
July 12, 2021
Assessing the accuracy of <sup>68</sup> Ga-PSMA PET/CT compared with MRI in the initial diagnosis of prostate malignancy: A cohort analysis of 114 consecutive patients
Felix Paterson, Michelle Nottage, Michael Kitchener, et al.
Internal Medicine Journal
|
October 23, 2020
Machine learning in the prediction of medical inpatient length of stay
Stephen Bacchi, Yiran Tan, Luke Oakden-Rayner, et al.
Page
of 3