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Johns Hopkins HealthCare deep neural network
Deep Neural Network, supplied by Johns Hopkins HealthCare, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
https://www.bioz.com/product/support+vector+machine+(svm)+dot+kernel+algorithm/neural+networks/pmc09748400-5-21-17
Average 90 stars, based on 1 article reviews
deep neural network - by Bioz Stars, 2026-09
90/100 stars

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Article Title: Bridging the Gap Between Computational Photography and Visual Recognition
Article Snippet: The team from Johns Hopkins University proposed a neural network-based approach to apply super-resolution on images.

Article Title: High-performing neural network models of visual cortex benefit from high latent dimensionality
Article Snippet: High-performing neural network models of visual cortex benefit from high latent dimensionality Eric Elmoznino∗ Department of Cognitive Science Johns Hopkins University Baltimore, MD 21218 eric.elmoznino@gmail.com Michael F. Bonner Department of Cognitive Science Johns Hopkins University Baltimore, MD 21218 mfbonner@jhu.edu S6 - Additional analyses of ED and encoding performance Here, we replicate our main results in more settings.

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Article Snippet: A. Gonzalez, UT Southwestern Medical Center, Dallas, TX and X. Jia, Johns Hopkins University, Baltimore, MD Purpose: Robustness of Deep Neural Networks (DNNs) is an important aspect to consider for clinical applications.

Article Title: Inner Workings: How do mosquitoes smell us? The answers could help eradicate disease
Article Snippet: In pursuit of additional molecular targets for repellants, Chris Potter at Johns Hopkins University in Baltimore, Maryland, is working to map the mosquito’s neural circuits.

Article Title: Learning from Crowds Using Graph Neural Networks with Attention Mechanism
Article Snippet: Crowdsourcing has been playing an essential role in machine learning since it can obtain a large number of labels in an economical and fast manner for training increasingly complex learning models.. However, the application of crowdsourcing learning still faces several challenges such as the low quality of crowd labels and the urgent requirement for learning models adapting to the label noises.. There have been many studies focusing on truth inference algorithms to improve the quality of labels obtained by crowdsourcing.

Article Title: 2024 Annual Meeting Abstracts - General Poster Discussion.
Article Snippet: Purpose: The application of artificial intelligence (AI) for an efficient IMRT quality assurance (QA) —which uses AI to identify IMRT plans for selective measurement — has demonstrated promising results in properly triaging plans for QA and potentially reducing the workload for measurement-based QA.. Yet its clinical implementation requires a comprehensive risk assessment to ensure patient safety.. This work evaluated our AI-assisted hybrid quality assurance (AIHQA) workflow using failure mode and effect analysis (FMEA).

Magnetic Resonance Imaging:

Article Title: Bridging the Gap Between Computational Photography and Visual Recognition
Article Snippet: The team from Johns Hopkins University proposed a neural network-based approach to apply super-resolution on images.

Article Title: High-performing neural network models of visual cortex benefit from high latent dimensionality
Article Snippet: High-performing neural network models of visual cortex benefit from high latent dimensionality Eric Elmoznino∗ Department of Cognitive Science Johns Hopkins University Baltimore, MD 21218 eric.elmoznino@gmail.com Michael F. Bonner Department of Cognitive Science Johns Hopkins University Baltimore, MD 21218 mfbonner@jhu.edu S6 - Additional analyses of ED and encoding performance Here, we replicate our main results in more settings.

Article Title: THE 2023 AAPM ANNUAL MEETING PROGRAM.
Article Snippet: A. Gonzalez, UT Southwestern Medical Center, Dallas, TX and X. Jia, Johns Hopkins University, Baltimore, MD Purpose: Robustness of Deep Neural Networks (DNNs) is an important aspect to consider for clinical applications.

Article Title: Inner Workings: How do mosquitoes smell us? The answers could help eradicate disease
Article Snippet: In pursuit of additional molecular targets for repellants, Chris Potter at Johns Hopkins University in Baltimore, Maryland, is working to map the mosquito’s neural circuits.

Article Title: Learning from Crowds Using Graph Neural Networks with Attention Mechanism
Article Snippet: Crowdsourcing has been playing an essential role in machine learning since it can obtain a large number of labels in an economical and fast manner for training increasingly complex learning models.. However, the application of crowdsourcing learning still faces several challenges such as the low quality of crowd labels and the urgent requirement for learning models adapting to the label noises.. There have been many studies focusing on truth inference algorithms to improve the quality of labels obtained by crowdsourcing.

Article Title: 2024 Annual Meeting Abstracts - General Poster Discussion.
Article Snippet: Purpose: The application of artificial intelligence (AI) for an efficient IMRT quality assurance (QA) —which uses AI to identify IMRT plans for selective measurement — has demonstrated promising results in properly triaging plans for QA and potentially reducing the workload for measurement-based QA.. Yet its clinical implementation requires a comprehensive risk assessment to ensure patient safety.. This work evaluated our AI-assisted hybrid quality assurance (AIHQA) workflow using failure mode and effect analysis (FMEA).



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