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检索条件"任意字段=2023 IEEE/CVF Conference on Computer Vision and Pattern Recognition, CVPR 2023"
11753 条 记 录,以下是4811-4820 订阅
排序:
Non-isotropy Regularization for Proxy-based Deep Metric Learning
Non-isotropy Regularization for Proxy-based Deep Metric Lear...
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ieee/cvf conference on computer vision and pattern recognition (cvpr)
作者: Roth, Karsten Vinyals, Oriol Akata, Zeynep Univ Tubingen Tubingen Germany DeepMind London England MPI Intelligent Syst Stuttgart Germany
Deep Metric Learning (DML) aims to learn representation spaces on which semantic relations can simply be expressed through predefined distance metrics. Best performing approaches commonly leverage class proxies as sam... 详细信息
来源: 评论
Multi-Stage Progressive Image Restoration
Multi-Stage Progressive Image Restoration
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ieee/cvf conference on computer vision and pattern recognition (cvpr)
作者: Zamir, Syed Waqas Arora, Aditya Khan, Salman Hayat, Munawar Khan, Fahad Shahbaz Yang, Ming-Hsuan Shao, Ling Incept Inst AI Abu Dhabi U Arab Emirates Mohamed bin Zayed Univ AI Abu Dhabi U Arab Emirates Monash Univ Clayton Vic Australia Univ Calif Merced Merced CA USA Yonsei Univ Seoul South Korea Google Res Mountain View CA USA
Image restoration tasks demand a complex balance between spatial details and high-level contextualized information while recovering images. In this paper, we propose a novel synergistic design that can optimally balan... 详细信息
来源: 评论
Unimodal-Concentrated Loss: Fully Adaptive Label Distribution Learning for Ordinal Regression
Unimodal-Concentrated Loss: Fully Adaptive Label Distributio...
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ieee/cvf conference on computer vision and pattern recognition (cvpr)
作者: Li, Qiang Wang, Jingjing Yao, Zhaoliang Li, Yachun Yang, Pengju Yan, Jingwei Wang, Chunmao Pu, Shiliang Hikvis Res Inst Hangzhou Peoples R China
Learning from a label distribution has achieved promising results on ordinal regression tasks such as facial age and head pose estimation wherein, the concept of adaptive label distribution learning (ALDL) has drawn l... 详细信息
来源: 评论
Structured Scene Memory for vision-Language Navigation
Structured Scene Memory for Vision-Language Navigation
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ieee/cvf conference on computer vision and pattern recognition (cvpr)
作者: Wang, Hanqing Wang, Wenguan Liang, Wei Xiong, Caiming Shen, Jianbing Beijing Inst Technol Beijing Peoples R China Swiss Fed Inst Technol Zurich Switzerland Salesforce Res San Francisco CA USA Incept Inst Artificial Intelligence Abu Dhabi U Arab Emirates
Recently, numerous algorithms have been developed to tackle the problem of vision-language navigation (VLN), i.e., entailing an agent to navigate 3D environments through following linguistic instructions. However, cur... 详细信息
来源: 评论
SHViT: Single-Head vision Transformer with Memory Efficient Macro Design
SHViT: Single-Head Vision Transformer with Memory Efficient ...
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ieee/cvf conference on computer vision and pattern recognition (cvpr)
作者: Yun, Seokju Ro, Youngmin Univ Seoul Machine Intelligence Lab Seoul South Korea
Recently, efficient vision Transformers have shown great performance with low latency on resource-constrained devices. Conventionally, they use 4x4 patch embeddings and a 4-stage structure at the macro level, while ut... 详细信息
来源: 评论
Positional Encoding as Spatial Inductive Bias in GANs
Positional Encoding as Spatial Inductive Bias in GANs
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ieee/cvf conference on computer vision and pattern recognition (cvpr)
作者: Xu, Rui Wang, Xintao Chen, Kai Zhou, Bolei Loy, Chen Change Chinese Univ Hong Kong CUHK SenseTime Joint Lab Hong Kong Peoples R China Nanyang Technol Univ S Lab Singapore Singapore Tencent PCG Appl Res Ctr Shenzhen Peoples R China SenseTime Res Hong Kong Peoples R China Shanghai AI Lab Shanghai Peoples R China
SinGAN shows impressive capability in learning internal patch distribution despite its limited effective receptive field. We are interested in knowing how such a translation-invariant convolutional generator could cap... 详细信息
来源: 评论
DLFormer: Discrete Latent Transformer for Video Inpainting
DLFormer: Discrete Latent Transformer for Video Inpainting
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ieee/cvf conference on computer vision and pattern recognition (cvpr)
作者: Ren, Jingjing Zheng, Qingqing Zhao, Yuanyuan Xu, Xuemiao Li, Chen South China Univ Technol Sch Comp Sci & Engn Guangzhou Peoples R China Tencent Inc WeChat Shenzhen Peoples R China Chinese Acad Sci Shenzhen Inst Adv Technol Shenzhen Peoples R China
Video inpainting remains a challenging problem to fill with plausible and coherent content in unknown areas in video frames despite the prevalence of data-driven methods. Although various transformer-based architectur... 详细信息
来源: 评论
SAM: The Sensitivity of Attribution Methods to Hyperparameters
SAM: The Sensitivity of Attribution Methods to Hyperparamete...
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ieee/cvf conference on computer vision and pattern recognition (cvpr)
作者: Bansal, Naman Agarwal, Chirag Anh Nguyen Auburn Univ Auburn AL 36849 USA Univ Illinois Chicago IL 60680 USA
Attribution methods can provide powerful insights into the reasons for a classifier's decision. We argue that a key desideratum of an explanation method is its robustness to input hyperparameters which are often r... 详细信息
来源: 评论
Lacunarity Pooling Layers for Plant Image Classification using Texture Analysis
Lacunarity Pooling Layers for Plant Image Classification usi...
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ieee/cvf conference on computer vision and pattern recognition (cvpr)
作者: Mohan, Akshatha Peeples, Joshua Texas A&M Univ Dept Elect & Comp Engn College Stn TX 77840 USA
Pooling layers (e.g., max and average) may overlook important information encoded in the spatial arrangement of pixel intensity and/or feature values. We propose a novel lacunarity pooling layer that aims to capture t... 详细信息
来源: 评论
Reward Learning from Narrated Demonstrations  31
Reward Learning from Narrated Demonstrations
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31st ieee/cvf conference on computer vision and pattern recognition (cvpr)
作者: Tung, Hsiao-Yu Harley, Adam W. Huang, Liang-Kang Fragkiadaki, Katerina Carnegie Mellon Univ 5000 Forbes Ave Pittsburgh PA 15213 USA
Humans effortlessly " program" one another by communicating goals and desires in natural language. In contrast, humans program robotic behaviours by indicating desired object locations and poses to be achiev... 详细信息
来源: 评论