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Titlebook: Advances in Visual Computing; 17th International S George Bebis,Bo Li,Remco Chang Conference proceedings 2022 The Editor(s) (if applicable)

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楼主: Bunion
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Learning Representations for Masked Facial Recoveryve experiments, we show that the approach is effective at unmasking face images. In addition, we also show that the identity information is preserved sufficiently well to improve face verification performance based on several face recognition benchmark datasets.
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Deep Learning Based Super-Resolution for Medical Volume Visualization with Direct Volume Renderingarn efficient upscaling of a low resolution rendering to a higher resolution space. Furthermore, to improve temporal stability, we also implement the temporal reprojection technique for accumulating history samples in volumetric rendering. Our method allows high-quality reconstruction of images from highly aliased input as shown in Fig. ..
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A Quantitative Analysis of Labeling Issues in the CelebA Dataset CelebA attributes not because they are difficult to predict, but because they are poorly labeled. This indicates that the CelebA dataset is flawed as a facial analysis tool and may not be suitable as a generic evaluation benchmark for imbalanced classification.
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Open-Set Plankton Recognition Using Similarity Learninglankton species. The model is shown to generalize well for new plankton classes added in the gallery set without retraining the model. This provides a good basis for the wider utilization of plankton recognition methods in aquatic research.
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0302-9743 VC 2022, which was held in October 2022. .The 61 papers presented in these volumes were carefully reviewed and selected from 110 submissions. They are organized in the following topical sections: .Part I: ​deep learning I; visualization; object detection and recognition; deep learning II; video anal
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Multi-class Detection and Tracking of Intracorporeal Suturing Instruments in an FLS Laparoscopic Box accuracy of the detection is crucial to our proposed tracking system, we evaluated the detection performance using the mean average precision and inference time metrics. An average precision of 85.50% was achieved for the detection of the needle, and 100% was achieved for the work field area.
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