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检索条件"任意字段=IEEE Conference on Computer Vision and Pattern Recognition Workshops"
23218 条 记 录,以下是1411-1420 订阅
排序:
Context-aware Pretraining for Efficient Blind Image Decomposition
Context-aware Pretraining for Efficient Blind Image Decompos...
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ieee/CVF conference on computer vision and pattern recognition (CVPR)
作者: Wang, Chao Zheng, Zhedong Quan, Ruijie Sun, Yifan Yang, Yi Zhejiang Univ ReLER CCAI Hangzhou Peoples R China Baidu Inc Beijing Peoples R China Natl Univ Singapore Sch Comp Sea NExT Joint Lab Singapore Singapore
In this paper, we study Blind Image Decomposition (BID), which is to uniformly remove multiple types of degradation at once without foreknowing the noise type. There remain two practical challenges: (1) Existing metho... 详细信息
来源: 评论
Best of Both Worlds: Multimodal Contrastive Learning with Tabular and Imaging Data
Best of Both Worlds: Multimodal Contrastive Learning with Ta...
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ieee/CVF conference on computer vision and pattern recognition (CVPR)
作者: Hager, Paul Menten, Martin J. Rueckert, Daniel Tech Univ Munich Munich Germany Klinikum Rechts Der Isar Munich Germany Imperial Coll London London England
Medical datasets and especially biobanks, often contain extensive tabular data with rich clinical information in addition to images. In practice, clinicians typically have less data, both in terms of diversity and sca... 详细信息
来源: 评论
BAEFormer: Bi-directional and Early Interaction Transformers for Bird's Eye View Semantic Segmentation
BAEFormer: Bi-directional and Early Interaction Transformers...
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ieee/CVF conference on computer vision and pattern recognition (CVPR)
作者: Pan, Cong He, Yonghao Peng, Junran Zhang, Qian Sui, Wei Zhang, Zhaoxiang Chinese Acad Sci Inst Automat Natl Lab Pattern Recognit Beijing Peoples R China Univ Chinese Acad Sci Sch Future Technol Beijing Peoples R China Horizon Robot Beijing Peoples R China Huawei Inc Shenzhen Guangdong Peoples R China HKISI CAS Ctr Artificial Intelligence & Robot Beijing Peoples R China
Bird's Eye View (BEV) semantic segmentation is a critical task in autonomous driving. However, existing Transformer-based methods confront difficulties in transforming Perspective View (PV) to BEV due to their uni... 详细信息
来源: 评论
ZBS: Zero-shot Background Subtraction via Instance-level Background Modeling and Foreground Selection
ZBS: Zero-shot Background Subtraction via Instance-level Bac...
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ieee/CVF conference on computer vision and pattern recognition (CVPR)
作者: An, Yongqi Zhao, Xu Yu, Tao Guo, Haiyun Zhao, Chaoyang Tang, Ming Wang, Jinqiao Chinese Acad Sci Inst Automat Natl Lab Pattern Recognit Beijing Peoples R China Univ Chinese Acad Sci Sch Artificial Intelligence Beijing Peoples R China
Background subtraction (BGS) aims to extract all moving objects in the video frames to obtain binary foreground segmentation masks. Deep learning has been widely used in this field. Compared with supervised-based BGS ... 详细信息
来源: 评论
Towards Real-Time 4K Image Super-Resolution
Towards Real-Time 4K Image Super-Resolution
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2023 ieee/CVF conference on computer vision and pattern recognition workshops, CVPRW 2023
作者: Zamfir, Eduard Conde, Marcos V. Timofte, Radu University of Würzburg Computer Vision Lab Caidas Ifi Germany
Over the past few years, high-definition videos and images in 720p (HD), 1080p (FHD), and 4K (UHD) resolution have become standard. While higher resolutions offer improved visual quality for users, they pose a signifi... 详细信息
来源: 评论
PaCa-ViT: Learning Patch-to-Cluster Attention in vision Transformers
PaCa-ViT: Learning Patch-to-Cluster Attention in Vision Tran...
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ieee/CVF conference on computer vision and pattern recognition (CVPR)
作者: Grainger, Ryan Paniagua, Thomas Song, Xi Cuntoor, Naresh Lee, Mun Wai Wu, Tianfu NC State Dept ECE Raleigh NC 27695 USA BlueHalo Arlington VA USA
vision Transformers (ViTs) are built on the assumption of treating image patches as "visual tokens" and learn patch-to-patch attention. The patch embedding based tokenizer has a semantic gap with respect to ... 详细信息
来源: 评论
Just a Glimpse: Rethinking Temporal Information for Video Continual Learning
Just a Glimpse: Rethinking Temporal Information for Video Co...
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2023 ieee/CVF conference on computer vision and pattern recognition workshops, CVPRW 2023
作者: Alssum, Lama León Alcázar, Juan Ramazanova, Merey Zhao, Chen Ghanem, Bernard Saudi Arabia
Class-incremental learning is one of the most important settings for the study of Continual Learning, as it closely resembles real-world application scenarios. With constrained memory sizes, catastrophic forgetting ar... 详细信息
来源: 评论
Re-thinking Model Inversion Attacks Against Deep Neural Networks
Re-thinking Model Inversion Attacks Against Deep Neural Netw...
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ieee/CVF conference on computer vision and pattern recognition (CVPR)
作者: Nguyen, Ngoc-Bao Chandrasegaran, Keshigeyan Abdollahzadeh, Milad Cheung, Ngai-Man SUTD Singapore Singapore
Model inversion (MI) attacks aim to infer and reconstruct private training data by abusing access to a model. MI attacks have raised concerns about the leaking of sensitive information (e.g. private face images used i... 详细信息
来源: 评论
Distilling vision-Language Pre-training to Collaborate with Weakly-Supervised Temporal Action Localization
Distilling Vision-Language Pre-training to Collaborate with ...
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ieee/CVF conference on computer vision and pattern recognition (CVPR)
作者: Ju, Chen Zheng, Kunhao Liu, Jinxiang Zhao, Peisen Zhang, Ya Chang, Jianlong Tian, Qi Wang, Yanfeng Shanghai Jiao Tong Univ CMIC Shanghai Peoples R China Shanghai AI Lab Shanghai Peoples R China Huawei Cloud Shenzhen Peoples R China
Weakly-supervised temporal action localization (WTAL) learns to detect and classify action instances with only category labels. Most methods widely adopt the off-the-shelf Classification-Based Pre-training (CBP) to ge... 详细信息
来源: 评论
Sparse Multi-Modal Graph Transformer with Shared-Context Processing for Representation Learning of Giga-pixel Images
Sparse Multi-Modal Graph Transformer with Shared-Context Pro...
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ieee/CVF conference on computer vision and pattern recognition (CVPR)
作者: Nakhli, Ramin Moghadam, Puria Azadi Mi, Haoyang Farahani, Hossein Baras, Alexander Gilks, Blake Bashashati, Ali Univ British Columbia Vancouver BC Canada Johns Hopkins Univ Baltimore MD USA
Processing giga-pixel whole slide histopathology images (WSI) is a computationally expensive task. Multiple instance learning (MIL) has become the conventional approach to process WSIs, in which these images are split... 详细信息
来源: 评论