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检索条件"机构=Processing and Pattern Recognition Laboratory"
778 条 记 录,以下是1-10 订阅
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Automatic Weight Allocation: optimizing remote sensing image retrieval from contrastive learning perspective
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Multimedia Systems 2025年 第3期31卷 1-19页
作者: Wang, Sijia Ge, Yun Liu, Qiyang Zeng, Yan School of Software Nanchang Hangkong University Jiangxi Nanchang330000 China Jiangxi Province Key Laboratory of Image Processing and Pattern Recognition Jiangxi Nanchang330063 China
Traditional supervised learning methods achieve remarkable performance in high-resolution remote sensing image retrieval, but are limited by the dependence on large-scale annotated images. Contrastive learning can lev... 详细信息
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Contour detection network simulating the primary visual pathway
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Digital Signal processing: A Review Journal 2025年 165卷
作者: Chen, Ke Fan, Yingle Fang, Tao Laboratory of Pattern Recognition and Image Processing Hangzhou Dianzi University Zhejiang Hangzhou310018 China
Biological vision exhibits exceptional contour perception capabilities. In view of this, research on contour detection guided by biological vision is gradually gaining attention. Inspired by the transmission and proce... 详细信息
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DFL: cross-view cross-layer discriminative feature learning for fine-grained 3D shape classification
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Neural Computing and Applications 2025年 1-22页
作者: Jiang, Jinzhe Bai, Jing Ma, Xiangyu The School of Computer Science and Engineering North Minzu University Yinchuan China The Key Laboratory of Images Processing and Pattern Recognition Laboratory North Minzu University Yinchuan China
Fine-grained 3D shape classification poses challenges in effectively capturing and integrating discriminative features residing in subtle local regions. Previous methods typically extract features independently from i...
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Reflecting topology consistency and abnormality via learnable attentions for airway labeling
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International Journal of Computer Assisted Radiology and Surgery 2025年 1-9页
作者: Li, Chenyu Zhang, Minghui Zhang, Chuyan Gu, Yun Institute of Medical Robotics Shanghai Jiao Tong University Shanghai China Institute of Image Processing and Pattern Recognition Shanghai Jiao Tong University Shanghai China Shanghai Key Laboratory of Flexible Medical Robotics Tongren Hospital Shanghai Jiao Tong University Shanghai China
Purpose: Accurate airway anatomical labeling is crucial for clinicians to identify and navigate complex bronchial structures during bronchoscopy. Automatic airway labeling is challenging due to significant anatomical ... 详细信息
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FG3DFormer: Fine-Grained 3D Shape Classification Based on Vision Transformer
FG3DFormer: Fine-Grained 3D Shape Classification Based on Vi...
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International Conference on Acoustics, Speech, and Signal processing (ICASSP)
作者: Xiangyu Ma Jing Bai Jinzhe Jiang Bin Peng The School of Computer Science and Engineering North Minzu University The Key Laboratory of Images Processing and Pattern Recognition Laboratory Yinchuan China
Fine-grained 3D shape classification (FGSC) remains challenging due to the difficulty of adaptively capturing global structure differences and subtle inter-class distinctions. This paper directly extends Vision Transf... 详细信息
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Visual Prompt Flexible-Modal Face Anti-Spoofing
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IEEE Transactions on Dependable and Secure Computing 2025年 第3期22卷 2597-2606页
作者: Yu, Zitong Cai, Rizhao Cui, Yawen Liu, Ajian Chen, Changsheng Great Bay University School of Computing and Information Technology Dongguan523000 China Nanyang Technological University ROSE Lab School of EEE 639798 Singapore Hong Kong Polytechnic University Kowloon Hong Kong Chinese Academy of Sciences University of Chinese Academy of Sciences National Laboratory of Pattern Recognition Institute of Automation Beijing100190 China Shenzhen University Guangdong Key Laboratory of Intelligent Information Processing Shenzhen Key Laboratory of Media Security College of Electronics and Information Engineering Shenzhen518060 China
Recently, vision transformer based multimodal learning methods have been proposed to improve the robustness of face anti-spoofing (FAS) systems. However, multimodal face data collected from the real world is often imp... 详细信息
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C2DFL: cross-view cross-layer discriminative feature learning for fine-grained 3D shape classification
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Neural Computing and Applications 2025年
作者: Jiang, Jinzhe Bai, Jing Ma, Xiangyu The School of Computer Science and Engineering North Minzu University Yinchuan750021 China The Key Laboratory of Images Processing and Pattern Recognition Laboratory North Minzu University Yinchuan750021 China
Fine-grained 3D shape classification poses challenges in effectively capturing and integrating discriminative features residing in subtle local regions. Previous methods typically extract features independently from i... 详细信息
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Ocean archaea PPI prediction with pretraining models  25
Ocean archaea PPI prediction with pretraining models
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Proceedings of the 2025 5th International Conference on Bioinformatics and Intelligent Computing
作者: Ying Zhang Yuan Liu Xiaoyong Pan Hongbin Shen Institute of Image Processing and Pattern Recognition Shanghai Jiao Tong University Shanghai China Key Laboratory of System Control and Information Processing Ministry of Education of China Shanghai China
Protein-Protein Interaction (PPI) provides important insights into the metabolic mechanisms of different biological processes. Although PPIs in some organisms have been investigated systematically, PPIs in the ocean a... 详细信息
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DLS-HCAN: Duplex Label Smoothing Based Hierarchical Context-Aware Network for Fine-grained 3D Shape Classification
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IEEE Transactions on Multimedia 2025年
作者: Bai, Shaojin Zheng, Liang Bai, Jing Ma, Xiangyu North Minzu University School of Computer Science and Engineering Yinchuan750021 China Liupanshan Laboratory Yinchuan750021 China North Minzu University Key Laboratory of Images Processing and Pattern Recognition LaboratoryCommission: IPPRLab Yinchuan750021 China
Fine-grained 3D shape classification (FGSC) has garnered significant attention recently and has made notable advancements. However, due to high inter-class similarity and intra-class diversity, it is still a challenge... 详细信息
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Discovering the nuclear localization signal universe through a deep learning model with interpretable attention units
Patterns
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patterns 2025年
作者: Li, Yi-Fan Pan, Xiaoyong Shen, Hong-Bin Institute of Image Processing and Pattern Recognition Shanghai Jiao Tong University and Key Laboratory of System Control and Information Processing Ministry of Education of China Shanghai200240 China
We describe NLSExplorer, an interpretable approach for nuclear localization signal (NLS) prediction. By utilizing the extracted information on nuclear-specific sites from the protein language model to assist in NLS de... 详细信息
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