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检索条件"任意字段=2005 IEEE Computer Society Conference on Computer Vision and Pattern Recognition, CVPR 2005"
6545 条 记 录,以下是331-340 订阅
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Symmetric Network with Spatial Relationship Modeling for Natural Language-based Vehicle Retrieval
Symmetric Network with Spatial Relationship Modeling for Nat...
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ieee/CVF conference on computer vision and pattern recognition (cvpr)
作者: Zhao, Chuyang Chen, Haobo Zhang, Wenyuan Chen, Junru Zhang, Sipeng Li, Yadong Li, Boxun MEGVII Technol Beijing Peoples R China
Natural language (NL) based vehicle retrieval aims to search specific vehicle given text description. Different from the image-based vehicle retrieval, NL-based vehicle retrieval requires considering not only vehicle ... 详细信息
来源: 评论
The Effect of Improving Annotation Quality on Object Detection Datasets: A Preliminary Study
The Effect of Improving Annotation Quality on Object Detecti...
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ieee/CVF conference on computer vision and pattern recognition (cvpr)
作者: Ma, Jiaxin Ushiku, Yoshitaka Sagara, Miori OMRON SINIC X Corp Tokyo Japan Baobab Inc Tokyo Japan
In this study, we partially reannotate conventional benchmark datasets for object detection and check whether there is performance improvement/drop compared with the original annotations. Recent studies on the annotat... 详细信息
来源: 评论
A Neural-network Enhanced Video Coding Framework beyond VVC
A Neural-network Enhanced Video Coding Framework beyond VVC
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ieee/CVF conference on computer vision and pattern recognition (cvpr)
作者: Li, Junru Li, Yue Lin, Chaoyi Zhang, Kai Zhang, Li Bytedance Inc Multimedia Lab San Diego CA 92122 USA
This paper presents a hybrid video compression framework, aiming at providing a demonstration of applying deep learning-based approaches beyond conventional coding framework. The proposed hybrid framework is establish... 详细信息
来源: 评论
Continual Learning Based on OOD Detection and Task Masking
Continual Learning Based on OOD Detection and Task Masking
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ieee/CVF conference on computer vision and pattern recognition (cvpr)
作者: Kim, Gyuhak Esmaeilpour, Sepideh Xiao, Changnan Liu, Bing Univ Illinois Chicago IL 60607 USA ByteDance Beijing Peoples R China
Existing continual learning techniques focus on either task incremental learning (TIL) or class incremental learning (CIL) problem, but not both. CIL and TIL differ mainly in that the task-id is provided for each test... 详细信息
来源: 评论
Wearable ImageNet: Synthesizing Tileable Textures via Dataset Distillation
Wearable ImageNet: Synthesizing Tileable Textures via Datase...
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ieee/CVF conference on computer vision and pattern recognition (cvpr)
作者: Cazenavette, George Wang, Tongzhou Torralba, Antonio Efros, Alexei A. Zhu, Jun-Yan Carnegie Mellon Univ Pittsburgh PA 15213 USA MIT Cambridge MA 02139 USA Univ Calif Berkeley Berkeley CA USA
Recent methods for Dataset Distillation are able to take in a large set of images of a specific class (e.g., from ImageNet) and synthesize a single image, such that a classifier trained on that image could perform sim... 详细信息
来源: 评论
Online Unsupervised Domain Adaptation for Person Re-identification
Online Unsupervised Domain Adaptation for Person Re-identifi...
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ieee/CVF conference on computer vision and pattern recognition (cvpr)
作者: Rami, Hamza Ospici, Matthieu Lathuiliere, Stephane Inst Polytech Paris Telecom Paris LTCI Paris France Atos London England
Unsupervised domain adaptation for person re-identification (Person Re-ID) is the task of transferring the learned knowledge on the labeled source domain to the unlabeled target domain. Most of the recent papers that ... 详细信息
来源: 评论
Analysis and Extensions of Adversarial Training for Video Classification
Analysis and Extensions of Adversarial Training for Video Cl...
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ieee/CVF conference on computer vision and pattern recognition (cvpr)
作者: Kinfu, Kaleab A. Vidal, Rene Johns Hopkins Univ Math Inst Data Sci Baltimore MD 21218 USA
Adversarial training (AT) is a simple yet effective defense against adversarial attacks to image classification systems, which is based on augmenting the training set with attacks that maximize the loss. However, the ... 详细信息
来源: 评论
NL-FFC: Non-Local Fast Fourier Convolution for Image Super Resolution
NL-FFC: Non-Local Fast Fourier Convolution for Image Super R...
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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 India
Deep neural networks have shown promising results in image super-resolution by learning a complex mapping from low resolution to high resolution image. However, most of the approaches learns to upsample by using convo... 详细信息
来源: 评论
On Improving Cross-dataset Generalization of Deepfake Detectors
On Improving Cross-dataset Generalization of Deepfake Detect...
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ieee/CVF conference on computer vision and pattern recognition (cvpr)
作者: Nadimpalli, Aakash Varma Rattani, Ajita Wichita State Univ Sch Comp Wichita KS 67260 USA
Facial manipulation by deep fake has caused major security risks and raised severe societal concerns. As a countermeasure, a number of deep fake detection methods have been proposed recently. Most of them model deep f... 详细信息
来源: 评论
AuxMix: Semi-Supervised Learning with Unconstrained Unlabeled Data
AuxMix: Semi-Supervised Learning with Unconstrained Unlabele...
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ieee/CVF conference on computer vision and pattern recognition (cvpr)
作者: Banitalebi-Dehkordi, Amin Gujjar, Pratik Zhang, Yong Huawei Technol Canada Co Ltd Vancouver BC Canada
Semi-supervised learning (SSL) has seen great strides when labeled data is scarce but unlabeled data is abundant. Critically, most recent work assume that such unlabeled data is drawn from the same distribution as the... 详细信息
来源: 评论