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Titlebook: Applications of Medical Artificial Intelligence; First International Shandong Wu,Behrouz Shabestari,Lei Xing Conference proceedings 2022 T

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期刊全称Applications of Medical Artificial Intelligence
期刊简称First International
影响因子2023Shandong Wu,Behrouz Shabestari,Lei Xing
视频video
学科分类Lecture Notes in Computer Science
图书封面Titlebook: Applications of Medical Artificial Intelligence; First International  Shandong Wu,Behrouz Shabestari,Lei Xing Conference proceedings 2022 T
影响因子This book constitutes the refereed proceedings of the first International Workshop on Applications of Medical Artificial Intelligence, AMAI 2022, held in conjunction with MICCAI 2022, in Singapore, in September 2022. .The book includes 17 papers which were carefully reviewed and selected from 26 full-length submissions..Practical applications of medical AI bring in new challenges and opportunities.The AMAI workshop aims to engage medical AI practitioners and bring more application flavor in clinical, evaluation, human-AI collaboration, new technical strategy, trustfulness, etc., to augment the research and development on the application aspects of medical AI, on top of pure technical research. .
Pindex Conference proceedings 2022
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书目名称Applications of Medical Artificial Intelligence影响因子(影响力)




书目名称Applications of Medical Artificial Intelligence影响因子(影响力)学科排名




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书目名称Applications of Medical Artificial Intelligence网络公开度学科排名




书目名称Applications of Medical Artificial Intelligence被引频次




书目名称Applications of Medical Artificial Intelligence被引频次学科排名




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书目名称Applications of Medical Artificial Intelligence年度引用学科排名




书目名称Applications of Medical Artificial Intelligence读者反馈




书目名称Applications of Medical Artificial Intelligence读者反馈学科排名




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,ECG-ATK-GAN: Robustness Against Adversarial Attacks on ECGs Using Conditional Generative Adversariaunction for adversarial perturbation identification and new blocks for discerning and combining out-of-distribution shifts in signals in the learning process for accurately classifying various arrhythmia types. Furthermore, we benchmark our architecture on six different white and black-box attacks a
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A Deep Learning-Based Interactive Medical Image Segmentation Framework, We propose to introduce a virtual user in the training process, modelled by simulating the user feedback from the current segmentation. We demonstrate our framework on the task of female pelvis MRI segmentation, using a new dataset. We evaluate our framework against existing work with the standard
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,Deep Neural Network Pruning for Nuclei Instance Segmentation in Hematoxylin and Eosin-Stained Histo layer-wise pruning delivers slightly better performance than network-wide pruning for small compression ratios (CRs) while for large CRs, network-wide pruning yields superior performance. For semantic segmentation, deep regression and final instance segmentation, 93.75%, 95%, and 80% of the model w
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Spatial Feature Conservation Networks (SFCNs) for Dilated Convolutions to Improve Breast Cancer Seg DCE-MR images obtained from public dataset. The segmentation results clearly show that the proposed network model provides the most accurate delineation results of the breast cancers in the DCE-MR images. The proposed model can be applied to other clinical practice sensitive to spatial information
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