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Uncertainty for safe utilization of ...
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UNSURE (Workshop) (2022 :)
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Uncertainty for safe utilization of machine learning in medical imaging = 4th International Workshop, UNSURE 2022, held in conjunction with MICCAI 2022, Singapore, September 18, 2022 : proceedings /
Record Type:
Electronic resources : Monograph/item
Title/Author:
Uncertainty for safe utilization of machine learning in medical imaging/ edited by Carole H. Sudre ... [et al.].
Reminder of title:
4th International Workshop, UNSURE 2022, held in conjunction with MICCAI 2022, Singapore, September 18, 2022 : proceedings /
remainder title:
UNSURE 2022
other author:
Sudre, Carole H.
corporate name:
UNSURE (Workshop)
Published:
Cham :Springer Nature Switzerland : : 2022.,
Description:
x, 147 p. :ill. (some col.), digital ;24 cm.
[NT 15003449]:
Uncertainty Modelling -- MOrphologically-aware Jaccard-based ITerative Optimization (MOJITO) for Consensus Segmentation -- Quantification of Predictive Uncertainty via Inference-Time Sampling -- Uncertainty categories in medical image segmentation: a study of source-related diversity -- On the pitfalls of entropy-based uncertainty for multi-class semi-supervised segmentation -- What Do Untargeted Adversarial Examples Reveal In Medical Image Segmentation? -- Uncertainty calibration -- Improved post-hoc probability calibration for out-of-domain MRI segmentation -- Improving error detection in deep learning-based radiotherapy autocontouring using Bayesian uncertainty -- A Plug-and-Play Method to Compute Uncertainty -- Calibration of Deep Medical Image Classifiers: An Empirical Comparison using Dermatology and Histopathology Datasets -- Annotation uncertainty and out of distribution management -- nnOOD: A Framework for Benchmarking Self-supervised Anomaly Localisation Methods -- Generalized Probabilistic U-Net for medical image segmentation -- Joint paraspinal muscle segmentation and inter-rater labeling variability prediction with multi-task TransUNet -- Information Gain Sampling for Active Learning in Medical Image Classification.
Contained By:
Springer Nature eBook
Subject:
Diagnostic imaging - Congresses. - Data processing -
Online resource:
https://doi.org/10.1007/978-3-031-16749-2
ISBN:
9783031167492
Uncertainty for safe utilization of machine learning in medical imaging = 4th International Workshop, UNSURE 2022, held in conjunction with MICCAI 2022, Singapore, September 18, 2022 : proceedings /
Uncertainty for safe utilization of machine learning in medical imaging
4th International Workshop, UNSURE 2022, held in conjunction with MICCAI 2022, Singapore, September 18, 2022 : proceedings /[electronic resource] :UNSURE 2022edited by Carole H. Sudre ... [et al.]. - Cham :Springer Nature Switzerland :2022. - x, 147 p. :ill. (some col.), digital ;24 cm. - Lecture notes in computer science,135630302-9743 ;. - Lecture notes in computer science ;13563..
Uncertainty Modelling -- MOrphologically-aware Jaccard-based ITerative Optimization (MOJITO) for Consensus Segmentation -- Quantification of Predictive Uncertainty via Inference-Time Sampling -- Uncertainty categories in medical image segmentation: a study of source-related diversity -- On the pitfalls of entropy-based uncertainty for multi-class semi-supervised segmentation -- What Do Untargeted Adversarial Examples Reveal In Medical Image Segmentation? -- Uncertainty calibration -- Improved post-hoc probability calibration for out-of-domain MRI segmentation -- Improving error detection in deep learning-based radiotherapy autocontouring using Bayesian uncertainty -- A Plug-and-Play Method to Compute Uncertainty -- Calibration of Deep Medical Image Classifiers: An Empirical Comparison using Dermatology and Histopathology Datasets -- Annotation uncertainty and out of distribution management -- nnOOD: A Framework for Benchmarking Self-supervised Anomaly Localisation Methods -- Generalized Probabilistic U-Net for medical image segmentation -- Joint paraspinal muscle segmentation and inter-rater labeling variability prediction with multi-task TransUNet -- Information Gain Sampling for Active Learning in Medical Image Classification.
This book constitutes the refereed proceedings of the Fourth Workshop on Uncertainty for Safe Utilization of Machine Learning in Medical Imaging, UNSURE 2022, held in conjunction with MICCAI 2022. The conference was hybrid event held from Singapore. For this workshop, 13 papers from 22 submissions were accepted for publication. They focus on developing awareness and encouraging research in the field of uncertainty modelling to enable safe implementation of machine learning tools in the clinical world.
ISBN: 9783031167492
Standard No.: 10.1007/978-3-031-16749-2doiSubjects--Topical Terms:
893542
Diagnostic imaging
--Data processing--Congresses.
LC Class. No.: RC78.7.D53 / U57 2022
Dewey Class. No.: 616.0754
Uncertainty for safe utilization of machine learning in medical imaging = 4th International Workshop, UNSURE 2022, held in conjunction with MICCAI 2022, Singapore, September 18, 2022 : proceedings /
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Uncertainty Modelling -- MOrphologically-aware Jaccard-based ITerative Optimization (MOJITO) for Consensus Segmentation -- Quantification of Predictive Uncertainty via Inference-Time Sampling -- Uncertainty categories in medical image segmentation: a study of source-related diversity -- On the pitfalls of entropy-based uncertainty for multi-class semi-supervised segmentation -- What Do Untargeted Adversarial Examples Reveal In Medical Image Segmentation? -- Uncertainty calibration -- Improved post-hoc probability calibration for out-of-domain MRI segmentation -- Improving error detection in deep learning-based radiotherapy autocontouring using Bayesian uncertainty -- A Plug-and-Play Method to Compute Uncertainty -- Calibration of Deep Medical Image Classifiers: An Empirical Comparison using Dermatology and Histopathology Datasets -- Annotation uncertainty and out of distribution management -- nnOOD: A Framework for Benchmarking Self-supervised Anomaly Localisation Methods -- Generalized Probabilistic U-Net for medical image segmentation -- Joint paraspinal muscle segmentation and inter-rater labeling variability prediction with multi-task TransUNet -- Information Gain Sampling for Active Learning in Medical Image Classification.
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This book constitutes the refereed proceedings of the Fourth Workshop on Uncertainty for Safe Utilization of Machine Learning in Medical Imaging, UNSURE 2022, held in conjunction with MICCAI 2022. The conference was hybrid event held from Singapore. For this workshop, 13 papers from 22 submissions were accepted for publication. They focus on developing awareness and encouraging research in the field of uncertainty modelling to enable safe implementation of machine learning tools in the clinical world.
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based on 0 review(s)
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EB RC78.7.D53 U57 2022
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