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检索条件"机构=Computer Vision and Pattern Recognition Laboratory"
210 条 记 录,以下是51-60 订阅
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Artificial intelligent techniques and its applications
Artificial intelligent techniques and its applications
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作者: Sundhararajan, Mahalingam Gao, Xiao-Zhi Vahdat Nejad, Hamed Department of Electronics and Communication Engineering Bharath Institute of Higher Education and Research Bharath University Chennai India Department of Machine Vision and Pattern Recognition Laboratory Lappeenranta University of Technology Finland Department of Computer Science and Engineering University of Birjand Birjand Iran
This special issue of the Journal of Intelligent & Fuzzy Systems is a selected collection of papers submitted to the IEEE International Conference on Algorithms, methodology, models and applications in emerging te... 详细信息
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Motion constraint patterns
Motion constraint patterns
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1993 IEEE Workshop on Qualitative vision, WQV 1993
作者: Fermüller, Cornelia Computer Vision Laboratory Center for Automation Research University of Maryland College ParkMD20742-3275 United States Department for Pattern Recognition and Image Processing Institute for Automation Technical University Vienna Treitlstraße 3 ViennaA-1040 Austria
The problem of egomotion recovery has been treated by using as input local image motion, with the published algorithms utilizing the geometric constraint relating 2-D local image motion (optical flow, correspondence, ... 详细信息
来源: 评论
EfficientFCN: Holistically-Guided Decoding for Semantic Segmentation  1
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16th European Conference on computer vision, ECCV 2020
作者: Liu, Jianbo He, Junjun Zhang, Jiawei Ren, Jimmy S. Li, Hongsheng CUHK-SenseTime Joint Laboratory The Chinese University of Hong Kong Shatin Hong Kong Shenzhen Key Lab of Computer Vision and Pattern Recognition Shenzhen Institutes of Advanced Technology Chinese Academy of Sciences Beijing China SenseTime Research Beijing China
Both performance and efficiency are important to semantic segmentation. State-of-the-art semantic segmentation algorithms are mostly based on dilated Fully Convolutional Networks (dilatedFCN), which adopt dilated conv... 详细信息
来源: 评论
Advances in Biometric Person Authentication  1
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丛书名: Lecture Notes in computer Science
1000年
作者: Stan Z. Li Zhenan Sun Tieniu Tan Sharath Pankanti Gérard Chollet David Zhang
来源: 评论
Online Discriminative Semantic-Preserving Hashing for Large-Scale Cross-Modal Retrieval  18th
Online Discriminative Semantic-Preserving Hashing for Large-...
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18th Pacific Rim International Conference on Artificial Intelligence, PRICAI 2021
作者: Yi, Jinhan He, Yi Liu, Xin Department of Computer Science and Technology Huaqiao University Xiamen361021 China Key Laboratory of Intelligent Perception and Systems for High-Dimensional Information of Ministry of Education Nanjing University of Science and Technology Nanjing210094 China Xiamen Key Laboratory of Computer Vision and Pattern Recognition Xiamen China Fujian Key Laboratory of Big Data Intelligence and Security Xiamen China
Cross-modal hashing has drawn increasing attentions for efficient retrieval across different modalities, and existing methods primarily learn the hash functions in a batch based mode, i.e., offline methods. Neverthele... 详细信息
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3D object retrieval with semantic attributes  11
3D object retrieval with semantic attributes
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19th ACM International Conference on Multimedia ACM Multimedia 2011, MM'11
作者: Gong, Boqing Liu, Jianzhuang Wang, Xiaogang Tang, Xiaoou Department of Information Engineering Chinese University of Hong Kong Hong Kong Department of Electronic Engineering Chinese University of Hong Kong Hong Kong Shenzhen Key Laboratory for Computer Vision and Pattern Recognition Shenzhen Institutes of Advanced Technology Chinese Academy of Sciences China
Humans are capable of describing objects using attributes, such as "the object looks circular and is man-made". Motivated by these high-level descriptions, we build a user-friendly 3D object retrieval system... 详细信息
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Rapid disparity prediction for dynamic scenes
Rapid disparity prediction for dynamic scenes
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9th International Symposium on Advances in Visual Computing, ISVC 2013
作者: Jiang, Jun Cheng, Jun Chen, Baowen Shenzhen Institutes of Advanced Technology Chinese Academy of Sciences China Chinese University of Hong Kong Hong Kong Hong Kong Shsenzhen Institute of Information Technology China Guangdong Provincial Key Laboratory of Robotics and Intelligent System China Shenzhen Key Laboratory of Computer Vision and Pattern Recognition China
Real-time 3D sensing plays a critical role in robotic navigation, video surveillance and human-computer interaction, etc. When computing 3D structures of dynamic scenes from stereo sequences, spatiotemporal stereo and... 详细信息
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Incorporating User Provided Constraints into Document Clustering
Incorporating User Provided Constraints into Document Cluste...
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IEEE International Conference on Data Mining (ICDM)
作者: Yanhua Chen Manjeet Rege Ming Dong Jing Hua Department of Computer Science Machine Vision and Pattern Recognition Laboratory Detroit MI USA Department of Computer Science Graphics and Imaging Laboratory Detroit MI USA
Document clustering without any prior knowledge or background information is a challenging problem. In this paper, we propose SS-NMF: a semi-supervised non- negative matrix factorization framework for document cluster... 详细信息
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Gender Classification from Offline Handwriting Images Using Textural Features
Gender Classification from Offline Handwriting Images Using ...
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International Workshop on Frontiers in Handwriting recognition
作者: Ali Mirza Momina Moetesum Imran Siddiqi Chawki Djeddi Center of Computer Vision and Pattern Recognition Bahria University Islamabad Pakistan LAMIS Laboratory Larbi Tebessi University Tebessa Algeria
Prediction of gender and other demographic attributes of individuals from handwriting samples offers an interesting basic, as well as applied research problem. The correlation between gender and the visual appearance ... 详细信息
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FunnyNet-W: Multimodal Learning of Funny Moments in Videos in the Wild
arXiv
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arXiv 2024年
作者: Liu, Zhi-Song Courant, Robin Kalogeiton, Vicky Computer Vision and Pattern Recognition Laboratory Lappeenranta-Lahti University of Technology Finland LIX Ecole Polytechnique IP Paris France
Automatically understanding funny moments (i.e., the moments that make people laugh) when watching comedy is challenging, as they relate to various features, such as body language, dialogues and culture. In this paper... 详细信息
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