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检索条件"任意字段=2023 IEEE/CVF Conference on Computer Vision and Pattern Recognition Workshops, CVPRW 2023"
3320 条 记 录,以下是2491-2500 订阅
排序:
Learning Common Rationale to Improve Self-Supervised Representation for Fine-Grained Visual recognition Problems
Learning Common Rationale to Improve Self-Supervised Represe...
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conference on computer vision and pattern recognition (CVPR)
作者: Yangyang Shu Anton Van den Hengel Lingqiao Liu School of Computer Science The University of Adelaide
Self-supervised learning (SSL) strategies have demonstrated remarkable performance in various recognition tasks. However, both our preliminary investigation and recent studies suggest that they may be less effective i...
来源: 评论
Joint Token Pruning and Squeezing Towards More Aggressive Compression of vision Transformers
Joint Token Pruning and Squeezing Towards More Aggressive Co...
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conference on computer vision and pattern recognition (CVPR)
作者: Siyuan Wei Tianzhu Ye Shen Zhang Yao Tang Jiajun Liang MEGVII Technology Tsinghua University
Although vision transformers (ViTs) have shown promising results in various computer vision tasks recently, their high computational cost limits their practical applications. Previous approaches that prune redundant t...
来源: 评论
Take the Scenic Route: Improving Generalization in vision-and-Language Navigation
Take the Scenic Route: Improving Generalization in Vision-an...
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ieee/cvf conference on computer vision and pattern recognition (CVPR)
作者: Yu, Felix Deng, Zhiwei Narasimhan, Karthik Russakovsky, Olga Princeton Univ Princeton NJ 08544 USA
In the vision-and-Language Navigation (VLN) task, an agent with egocentric vision navigates to a destination given natural language instructions. The act of manually annotating these instructions is timely and expensi... 详细信息
来源: 评论
Dealing with Cross-Task Class Discrimination in Online Continual Learning
Dealing with Cross-Task Class Discrimination in Online Conti...
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conference on computer vision and pattern recognition (CVPR)
作者: Yiduo Guo Bing Liu Dongyan Zhao Wangxuan Institute of Computer Technology Peking University Department of Computer Science University of Illinois Chicago BIGAI Beijing China National Key Laboratory of General Artificial Intelligence
Existing continual learning (CL) research regards catastrophic forgetting (CF) as almost the only challenge. This paper argues for another challenge in class-incremental learning (CIL), which we call cross-task class ...
来源: 评论
Recurrent vision Transformers for Object Detection with Event Cameras
Recurrent Vision Transformers for Object Detection with Even...
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conference on computer vision and pattern recognition (CVPR)
作者: Mathias Gehrig Davide Scaramuzza Robotics and Perception Group University of Zurich Switzerland
We present Recurrent vision Transformers (RVTs), a novel backbone for object detection with event cameras. Event cameras provide visual information with submillisecond latency at a high-dynamic range and with strong r...
来源: 评论
Leveraging per Image-Token Consistency for vision-Language Pre-training
Leveraging per Image-Token Consistency for Vision-Language P...
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conference on computer vision and pattern recognition (CVPR)
作者: Yunhao Gou Tom Ko Hansi Yang James Kwok Yu Zhang Mingxuan Wang Southern University of Science and Technology Hong Kong University of Science and Technology ByteDance AI Lab Peng Cheng Laboratory
Most existing vision-language pre-training (VLP) approaches adopt cross-modal masked language modeling (CMLM) to learn vision-language associations. However, we find that CMLM is insufficient for this purpose accordin...
来源: 评论
You Are Catching My Attention: Are vision Transformers Bad Learners under Backdoor Attacks?
You Are Catching My Attention: Are Vision Transformers Bad L...
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conference on computer vision and pattern recognition (CVPR)
作者: Zenghui Yuan Pan Zhou Kai Zou Yu Cheng Hubei Key Laboratory of Distributed System Security Hubei Engineering Research Center on Big Data Security School of Cyber Science and Engineering Huazhong University of Science and Technology Protagolabs Inc Microsoft Research
vision Transformers (ViTs), which made a splash in the field of computer vision (CV), have shaken the dominance of convolutional neural networks (CNNs). However, in the process of industrializing ViTs, backdoor attack...
来源: 评论
OcTr: Octree-Based Transformer for 3D Object Detection
OcTr: Octree-Based Transformer for 3D Object Detection
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conference on computer vision and pattern recognition (CVPR)
作者: Chao Zhou Yanan Zhang Jiaxin Chen Di Huang State Key Laboratory of Software Development Environment Beihang University Beijing China School of Computer Science and Engineering Beihang University Beijing China Hangzhou Innovation Institute Beihang University Hangzhou China
A key challenge for LiDAR-based 3D object detection is to capture sufficient features from large scale 3D scenes especially for distant or/and occluded objects. Albeit recent efforts made by Transformers with the long...
来源: 评论
Activating More Pixels in Image Super-Resolution Transformer
Activating More Pixels in Image Super-Resolution Transformer
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conference on computer vision and pattern recognition (CVPR)
作者: Xiangyu Chen Xintao Wang Jiantao Zhou Yu Qiao Chao Dong State Key Laboratory of Internet of Things for Smart City University of Macau Shenzhen Key Lab of Computer Vision and Pattern Recognition Shenzhen Institute of Advanced Technology Chinese Academy of Sciences Shanghai Artificial Intelligence Laboratory ARC Lab Tencent PCG
Transformer-based methods have shown impressive performance in low-level vision tasks, such as image super-resolution. However, we find that these networks can only utilize a limited spatial range of input information...
来源: 评论
Generative Flows as a General Purpose Solution for Inverse Problems
Generative Flows as a General Purpose Solution for Inverse P...
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ieee computer Society conference on computer vision and pattern recognition workshops (cvprw)
作者: José A. Chá vez San Pablo Catholic University Peru
Due to the success of generative flows to model data distributions, they have been explored in inverse problems. Given a pre-trained generative flow, previous work proposed to minimize the 2-norm of the latent variabl... 详细信息
来源: 评论