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检索条件"任意字段=2006 Conference on Computer Vision and Pattern Recognition Workshops"
5506 条 记 录,以下是161-170 订阅
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Deep Graphics Encoder for Real-Time Video Makeup Synthesis from Example
Deep Graphics Encoder for Real-Time Video Makeup Synthesis f...
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IEEE/CVF conference on computer vision and pattern recognition (CVPR)
作者: Kips, Robin Jiang, Ruowei Ba, Sileye Phung, Edmund Aarabi, Parham Gori, Pietro Perrot, Matthieu Bloch, Isabelle LOreal Res & Innovat Clichy France Inst Polytech Paris Telecom Paris LTCI Paris France Modiface Toronto ON Canada Sorbonne Univ CNRS LIP6 Paris France
While makeup virtual-try-on is now widespread, parametrizing a computer graphics rendering engine for synthesizing images of a given cosmetics product remains a challenging task. In this paper, we introduce an inverse... 详细信息
来源: 评论
AAFormer: A Multi-Modal Transformer Network for Aerial Agricultural Images
AAFormer: A Multi-Modal Transformer Network for Aerial Agric...
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IEEE/CVF conference on computer vision and pattern recognition (CVPR)
作者: Shen, Yao Wang, Lei Jin, Yue China Pacific Insurance Grp Co Ltd Shanghai Peoples R China East China Normal Univ Shanghai Peoples R China
The semantic segmentation of agricultural aerial images is very important for the recognition and analysis of farmland anomaly patterns, such as drydown, endrow, nutrient deficiency, etc. Methods for general semantic ... 详细信息
来源: 评论
Fire Detection Based on Flame Enhancement for Weak Fires  19th
Fire Detection Based on Flame Enhancement for Weak Fires
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19th Chinese conference on Image and Graphics Technologies and Applications, IGTA 2024
作者: Chen, Kuan Wen, Wen Feng, Fujian Xu, Xiang Liang, Yihui School of Computer Guangdong University of Technology Guangzhou510000 China School of Computer Science Zhongshan Institute University of Electronic Science and Technology of China Zhongshan528400 China Guizhou Key Laboratory of Pattern Recognition and Intelligent System Guizhou Minzu University Guiyang550025 China
Detecting weak fire, such as overexposed and highly transparent flames, remains a significant challenge in vision-based fire detection. Convolutional Neural Network (CNN) based methods are widely used for automatic fi... 详细信息
来源: 评论
Embedded Computing Framework for vision-based Real-time Surround Threat Analysis and Driver Assistance  29
Embedded Computing Framework for Vision-based Real-time Surr...
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29th IEEE conference on computer vision and pattern recognition (CVPR)
作者: Lu, Frankie Lee, Sean Satzoda, Ravi Kumar Trivedi, Mohan Univ Calif San Diego San Diego CA 92103 USA
In this paper, we present a distributed embedded vision system that enables surround scene analysis and vehicle threat estimation. The proposed system analyzes the surroundings of the ego-vehicle using four cameras, e... 详细信息
来源: 评论
Stereo vision Algorithms for FPGAs
Stereo Vision Algorithms for FPGAs
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26th IEEE conference on computer vision and pattern recognition (CVPR)
作者: Mattoccia, Stefano Univ Bologna Dept Comp Sci & Engn I-40126 Bologna Italy
In recent years, with the advent of cheap and accurate RGBD (RGB plus Depth) active sensors like the Microsoft Kinect and devices based on time-of-flight (ToF) technology, there has been increasing interest in 3D-base... 详细信息
来源: 评论
Recognizing Actions from Depth Cameras as Weakly Aligned Multi-Part Bag-of-Poses
Recognizing Actions from Depth Cameras as Weakly Aligned Mul...
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26th IEEE conference on computer vision and pattern recognition (CVPR)
作者: Seidenari, Lorenzo Varano, Vincenzo Berretti, Stefano Del Bimbo, Alberto Pala, Pietro Univ Florence I-50121 Florence Italy
Recently released depth cameras provide effective estimation of 3D positions of skeletal joints in temporal sequences of depth maps. In this work, we propose an efficient yet effective method to recognize human action... 详细信息
来源: 评论
Dissecting the High-Frequency Bias in Convolutional Neural Networks
Dissecting the High-Frequency Bias in Convolutional Neural N...
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IEEE/CVF conference on computer vision and pattern recognition (CVPR)
作者: Abello, Antonio A. Hirata Jr, Roberto Wang, Zhangyang Univ Sao Paulo Butanta Sao Paulo SP Brazil Univ Texas Austin Austin TX 78712 USA
For convolutional neural networks (CNNs), a common hypothesis that explains both their generalization capability and their characteristic brittleness is that these models are implicitly regularized to rely on impercep... 详细信息
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Contrastive Learning for Natural Language-Based Vehicle Retrieval
Contrastive Learning for Natural Language-Based Vehicle Retr...
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IEEE/CVF conference on computer vision and pattern recognition (CVPR)
作者: Tam Minh Nguyen Quang Huu Pham Linh Bao Doan Hoang Viet Trinh Viet-Anh Nguyen Viet-Hoang Phan Sun Asterisk Inc R&D Lab AI Res Team Tokyo Japan Hanoi Univ Sci & Technol Hanoi Vietnam
AI City Challenge 2021 Task 5: The Natural Language-Based Vehicle Tracking is a Natural Language-based Vehicle Retrieval task, which requires retrieving a single-camera track using a set of three natural language desc... 详细信息
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SuperLoRA: Parameter-Efficient Unified Adaptation for Large vision Models
SuperLoRA: Parameter-Efficient Unified Adaptation for Large ...
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IEEE/CVF conference on computer vision and pattern recognition (CVPR)
作者: Chen, Xiangyu Liu, Jing Wang, Ye Wang, Pu (Perry) Brand, Matthew Wang, Guanghui Koike-Akino, Toshiaki Univ Kansas Lawrence KS 66045 USA Mitsubishi Elect Res Labs MERL Cambridge MA 02139 USA Toronto Metropolitan Univ Toronto ON M5B 2K3 Canada
Low-rank adaptation (LoRA) and its variants are widely employed in fine-tuning large models, including large language models for natural language processing and diffusion models for computer vision. This paper propose... 详细信息
来源: 评论
SAM: Pushing the Limits of Saliency Prediction Models  31
SAM: Pushing the Limits of Saliency Prediction Models
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IEEE/CVF conference on computer vision and pattern recognition (CVPR)
作者: Cornia, Marcella Baraldi, Lorenzo Serra, Giuseppe Cmcidara, Rita Univ Modena & Reggio Emilia Modena Italy Univ Udine Udine Italy
The prediction of human eye fixations has been recently gaining a lot of attention thanks to the improvements shown by deep architectures. In our work, we go beyond classical feed-forward networks to predict saliency ... 详细信息
来源: 评论