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检索条件"任意字段=2024 IEEE/CVF Conference on Computer Vision and Pattern Recognition Workshops, CVPRW 2024"
4655 条 记 录,以下是251-260 订阅
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Stacked U-Nets for Ground Material Segmentation in Remote Sensing Imagery  31
Stacked U-Nets for Ground Material Segmentation in Remote Se...
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ieee/cvf conference on computer vision and pattern recognition (CVPR)
作者: Ghosh, Arthita Ehrlich, Max Shah, Sohil Davis, Larry Chellappa, Rama Univ Maryland College Pk MD 20742 USA
We present a semantic segmentation algorithm for RGB remote sensing images. Our method is based on the Dilated Stacked U-Nets architecture. This state-of-the-art method has been shown to have good performance in other... 详细信息
来源: 评论
HMIway-env: A Framework for Simulating Behaviors and Preferences to Support Human-AI Teaming in Driving
HMIway-env: A Framework for Simulating Behaviors and Prefere...
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ieee/cvf conference on computer vision and pattern recognition (CVPR)
作者: Gopinath, Deepak DeCastro, Jonathan Rosman, Guy Sumner, Emily Morgan, Allison Hakimi, Shabnam Stent, Simon Toyota Res Inst Los Altos CA 94022 USA
We introduce a lightweight simulation and modeling framework, HMIway-env, for studying human-machine teaming in the context of driving. The goal of the framework is to accelerate the development of adaptive AI systems... 详细信息
来源: 评论
Self-Supervised Variable Rate Image Compression using Visual Attention
Self-Supervised Variable Rate Image Compression using Visual...
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ieee/cvf conference on computer vision and pattern recognition (CVPR)
作者: Sinha, Abhishek Kumar Moorthi, S. Manthira Dhar, Debajyoti Space Applicat Ctr Signal & Image Proc Grp Ahmadabad Gujarat India
The recent success of self-supervised learning relies on its ability to learn the representations from self-defined pseudo-labels that are applied to several downstream tasks. Motivated by this ability, we present a d... 详细信息
来源: 评论
ALPS: Adaptive Quantization of Deep Neural Networks with GeneraLized PositS
ALPS: Adaptive Quantization of Deep Neural Networks with Gen...
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ieee/cvf conference on computer vision and pattern recognition (CVPR)
作者: Langroudi, Hamed F. Karia, Vedant Carmichael, Zachariah Zyarah, Abdullah Pandit, Tej Gustafson, John L. Kudithipudi, Dhireesha Univ Texas San Antonio Neuromorph AI Lab San Antonio TX 78249 USA Rochester Inst Technol Rochester NY 14623 USA Natl Univ Singapore Singapore Singapore
In this paper, a new adaptive quantization algorithm for generalized posit format is presented, to optimally represent the dynamic range and distribution of deep neural network parameters. Adaptation is achieved by mi... 详细信息
来源: 评论
Edge Guided Progressively Generative Image Outpainting
Edge Guided Progressively Generative Image Outpainting
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ieee/cvf conference on computer vision and pattern recognition (CVPR)
作者: Lin, Han Pagnucco, Maurice Song, Yang Univ New South Wales Sch Comp Sci & Engn Sydney NSW Australia
Deep-learning based generative models are proven to be capable for achieving excellent results in numerous image processing tasks with a wide range of applications. One significant improvement of deep-learning approac... 详细信息
来源: 评论
Alleviating Representational Shift for Continual Fine-tuning
Alleviating Representational Shift for Continual Fine-tuning
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ieee/cvf conference on computer vision and pattern recognition (CVPR)
作者: Jie, Shibo Deng, Zhi-Hong Li, Ziheng Peking Univ Sch Artificial Intelligence Beijing Peoples R China
We study a practical setting of continual learning: fine-tuning on a pre-trained model continually. Previous work has found that, when training on new tasks, the features (penultimate layer representations) of previou... 详细信息
来源: 评论
Essentials for Class Incremental Learning
Essentials for Class Incremental Learning
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ieee/cvf conference on computer vision and pattern recognition (CVPR)
作者: Mittal, Sudhanshu Galesso, Silvio Brox, Thomas Univ Freiburg Freiburg Germany
Contemporary neural networks are limited in their ability to learn from evolving streams of training data. When trained sequentially on new or evolving tasks, their accuracy drops sharply, making them unsuitable for m... 详细信息
来源: 评论
Contrastive Learning for Sports Video: Unsupervised Player Classification
Contrastive Learning for Sports Video: Unsupervised Player C...
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ieee/cvf conference on computer vision and pattern recognition (CVPR)
作者: Koshkina, Maria Pidaparthy, Hemanth Elder, James H. York Univ Toronto ON Canada
We address the problem of unsupervised classification of players in a team sport according to their team affiliation, when jersey colours and design are not known a priori. We adopt a contrastive learning approach in ... 详细信息
来源: 评论
Instagram Filter Removal on Fashionable Images
Instagram Filter Removal on Fashionable Images
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ieee/cvf conference on computer vision and pattern recognition (CVPR)
作者: Kinli, Furkan Ozcan, Baris Kirac, Furkan Ozyegin Univ Video Vis & Graph Lab Istanbul Turkey
Social media images are generally transformed by filtering to obtain aesthetically more pleasing appearances. However, CNNs generally fail to interpret both the image and its filtered version as the same in the visual... 详细信息
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Multi-view Multi-label Canonical Correlation Analysis for Cross-modal Matching and Retrieval
Multi-view Multi-label Canonical Correlation Analysis for Cr...
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ieee/cvf conference on computer vision and pattern recognition (CVPR)
作者: Sanghavi, Rushil Verma, Yashaswi IIT Jodhpur Jodhpur Rajasthan India
In this paper, we address the problem of cross-modal retrieval in presence of multi-view and multi-label data. For this, we present Multi-view Multi-label Canonical Correlation Analysis (or MVMLCCA), which is a genera... 详细信息
来源: 评论