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检索条件"机构=Computer Vision and Machine Intelligence Laboratory Department of Computer Science"
835 条 记 录,以下是101-110 订阅
排序:
Spiking Neural Networks for Temporal Processing: Status Quo and Future Prospects
arXiv
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arXiv 2025年
作者: Ma, Chenxiang Chen, Xinyi Li, Yanchen Yang, Qu Wu, Yujie Li, Guoqi Pan, Gang Tang, Huajin Tan, Kay Chen Wu, Jibin Department of Data Science and Artificial Intelligence The Hong Kong Polytechnic University Hong Kong Department of Computing The Hong Kong Polytechnic University Hong Kong Department of Electrical and Computer Engineering National University of Singapore 119077 Singapore Institute of Automation Chinese Academy of Sciences Beijing100045 China State Key Laboratory of Brain-Machine Intelligence College of Computer Science and Technology MOE Frontier Science Center for Brain Science and Brain-Machine Integration Zhejiang University Hangzhou310027 China
Temporal processing is fundamental for both biological and artificial intelligence systems, as it enables the comprehension of dynamic environments and facilitates timely responses. Spiking Neural Networks (SNNs) exce... 详细信息
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Hybrid Modeling Approaches in Energy Internet: Bridging Cyber, Physical, and Social Realms
Hybrid Modeling Approaches in Energy Internet: Bridging Cybe...
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2024 International Conference on Communication, computer sciences and Engineering, IC3SE 2024
作者: Chaturvedi, Prateek Thethi, H. Pal Reddy, N. V. Uma Kalaiarasi, M. Al-Rubaye, Taqi Mohammed Khattab Anusha, K. Amity University Greater Noida Department Of Mechanical Engineering India Lovely Professional University Phagwara India New Horizon College Of Engineering Department Of Artificial Intelligence And Machine Learning Bangalore India Institute Of Aeronautical Engineering Department Of Computer Science And Engineering Telangana Hyderabad India College Of Medical Technologies The Islamic University Department Of Medical Laboratory Technology Najaf Iraq Mlr Institute Of Technology Department Of CSE-AI&ML Telangana Hyderabad India
Effective modeling approaches are required for the management and operation of the Energy Internet due to the system's complexity and mobility. New hybrid models that link the Energy Internet's digital, real-w... 详细信息
来源: 评论
Skeletal Human Action Recognition using Hybrid Attention based Graph Convolutional Network
arXiv
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arXiv 2022年
作者: Xing, Hao Burschka, Darius Technical University of Munich Machine Vision and Perception Group Munich Institute of Robotics and Machine Intelligence Department of Computer Science Parkring 13 Munich85748 Germany
In skeleton-based action recognition, Graph Convolutional Networks model human skeletal joints as vertices and connect them through an adjacency matrix, which can be seen as a local attention mask. However, in most ex... 详细信息
来源: 评论
Emotion Recognition from Eye Movements Using Multi-way Autoregressive Model
Emotion Recognition from Eye Movements Using Multi-way Autor...
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IEEE International Conference on Bioinformatics and Biomedicine (BIBM)
作者: Tian-Fang Ma Xuan-Hao Liu Wei-Long Zheng Bao-Liang Lu Center for Brain-Like Computing and Machine Intelligence Department of Computer Science and Engineering Key Laboratory of Shanghai Education Commission for Intelligent Interaction and Cognitive Engineering Shanghai Jiao Tong University Shanghai China
The application of physiological signals in emotion recognition is a popular research topic in human-computer interactions. Eye movement, as an important physiological signal, plays an essential role in medicine, psyc... 详细信息
来源: 评论
Disentangling Long-Short Term State Under Unknown Interventions for Online Time Series Forecasting
arXiv
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arXiv 2025年
作者: Cai, Ruichu Huang, Haiqin Jiang, Zhifan Li, Zijian Zhou, Changze Liu, Yuequn Liu, Yuming Hao, Zhifeng School of Computer Science Guangdong University of Technology China Peng Cheng Laboratory Shenzhen China Machine Learning Department Mohamed bin Zayed University of Artificial Intelligence United Arab Emirates Shantou University China
Current methods for time series forecasting struggle in the online scenario, since it is difficult to preserve long-term dependency while adapting short-term changes when data are arriving sequentially. Although some ... 详细信息
来源: 评论
Disentangling Long-Short Term State Under Unknown Interventions for Online Time Series Forecasting  39
Disentangling Long-Short Term State Under Unknown Interventi...
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39th Annual AAAI Conference on Artificial intelligence, AAAI 2025
作者: Cai, Ruichu Huang, Haiqin Jiang, Zhifan Li, Zijian Zhou, Changze Liu, Yuequn Liu, Yuming Hao, Zhifeng School of Computer Science Guangdong University of Technology China Peng Cheng Laboratory Shenzhen China Machine Learning Department Mohamed bin Zayed University of Artificial Intelligence United Arab Emirates Shantou University China
Current methods for time series forecasting struggle in the online scenario, since it is difficult to preserve long-term dependency while adapting short-term changes when data are arriving sequentially. Although some ...
来源: 评论
vision Transformer Based Automated Model for Enhancing Lung Cancer Classification
Vision Transformer Based Automated Model for Enhancing Lung ...
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IEEE International Workshop on Imaging Systems and Techniques (IST)
作者: Akbar Sheikh Akbari Arvind Kumar B Ramachandra Reddy Koushlendra Kumar Singh Masahiro Takei Leeds Beckett University UK Machine Vision and Intelligence Lab National Institute of Technology Jamshedpur Jharkhand India Computer Science and Engineering National Institute of Technology Jamshedpur Jharkhand India Department of Mechanical Engineering Chiba University Chiba Japan
Lung cancer is one of the leading causes of cancer related mortality. The early detection and classification of the cancers tissues will reduce the mortalities rate. The present research focus on the development of au... 详细信息
来源: 评论
LES-Talker: Fine-Grained Emotion Editing for Talking Head Generation in Linear Emotion Space
arXiv
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arXiv 2024年
作者: Feng, Guanwen Qian, Zhihao Li, Yunan Jin, Siyu Miao, Qiguang Pun, Chi-Man School of Computer Science and Technology Xidian University Xi’an710071 China Xi’an Key Laboratory of Big Data and Intelligent Vision Shaanxi Xi’an710071 China Key Laboratory of Collaborative Intelligence Systems Ministry of Education Xidian University Xi’an710071 China Department of Computer and Information Science University of Macau 999078 China
While existing one-shot talking head generation models have achieved progress in coarse-grained emotion editing, there is still a lack of fine-grained emotion editing models with high interpretability. We argue that f... 详细信息
来源: 评论
Protein codes promote selective subcellular compartmentalization
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science (New York, N.Y.) 2025年 第6738期387卷 1095-1101页
作者: Kilgore, Henry R. Chinn, Itamar Mikhael, Peter G. Mitnikov, Ilan Van Dongen, Catherine Zylberberg, Guy Afeyan, Lena Banani, Salman F. Wilson-Hawken, Susana Lee, Tong Ihn Barzilay, Regina Young, Richard A. Whitehead Institute for Biomedical Research Cambridge MA United States Computer Science and Artificial Intelligence Laboratory Massachusetts Institute of Technology (MIT) Cambridge MA United States Abdul Latif Jameel Clinic for Machine Learning in Health MIT Cambridge MA United States Department of Biology MIT Cambridge MA United States Department of Pathology Brigham and Women's Hospital Harvard Medical School Boston MA United States Computational and Systems Biology Program MIT Cambridge MA United States
Cells have evolved mechanisms to distribute ~10 billion protein molecules to subcellular compartments where diverse proteins involved in shared functions must assemble. In this study, we demonstrate that proteins with...
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DuSSS: Dual Semantic Similarity-Supervised vision-Language Model for Semi-Supervised Medical Image Segmentation
arXiv
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arXiv 2024年
作者: Pan, Qingtao Qiao, Wenhao Lou, Jingjiao Ji, Bing Li, Shuo School of Control Science and Engineering Shandong University Jinan China Key Laboratory of Machine Intelligence and System Control Ministry of Education China Department of Computer and Data Science Department of Biomedical Engineering Case Western Reserve University United States
Semi-supervised medical image segmentation (SSMIS) uses consistency learning to regularize model training, which alleviates the burden of pixel-wise manual annotations. However, it often suffers from error supervision... 详细信息
来源: 评论