作者:
Wang, JianingHua, ZhengZhang, WanHao, ShengjiaYao, YuqiongGong, MaoguoXidian University
Key Laboratory of Collaborative Intelligence Systems Ministry of Education School of Computer Science and Technology Xi’an710071 China Xidian University
Key Laboratory of Intelligent Perception and Image Understanding of Ministry of Education of China School of Artificial Intelligence Xi’an710071 China Xidian University
Key Laboratory of Collaborative Intelligence Systems Ministry of Education Xi’an710071 China
Memory stability and learning flexibility in continual learning (CL) is a core challenge for cross-scene Hyperspectral Anomaly Detection (HAD) task. Biological neural networks can actively forget history knowledge tha...
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Entity Alignment (EA) is to link potential equivalent entities across different knowledge graphs (KGs). Most existing EA methods are supervised as they require the supervision of seed alignments, i.e., manually specif...
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Due to the presence of redundancy and interference, frame sampling is a promising but challenging solution to mitigate the expensive computation of video action recognition. Although the motion prior has shown great p...
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Recently, multi-view subspace clustering has attracted extensive attention due to the rapid increase of multi-view data in many real-world applications. The main goal of this task is to learn a common representation o...
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Recently, Mix-style data augmentation methods (e.g., Mixup and CutMix) have shown promising performance in various visual tasks. However, these methods are primarily designed for single-label images, ignoring the cons...
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3D point cloud registration is a process of solving the geometric transformation between two point clouds. This process is an important issue in computervision and pattern recognition. The registration methods based ...
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Existing 3D mask learning methods encounter performance bottlenecks under limited data, and our objective is to overcome this limitation. In this paper, we introduce a triple point masking scheme, named TPM, which ser...
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The detection and recognition of student behavior play a pivotal role in the context of smart classrooms. However, conventional methods often encounter performance degradation due to challenges such as occlusion, data...
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In building extraction, collecting pixel-level annotations required by fully supervised methods is extremely costly. image-level weakly supervised methods based on class activation maps (CAMs) effectively reduce the c...
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For target tracking,automatic target recognition and detection applications,they value edge detection sensibility,precision and location accuracy rather than other *** at these three criterions,this paper presents an ...
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ISBN:
(纸本)9781479970186
For target tracking,automatic target recognition and detection applications,they value edge detection sensibility,precision and location accuracy rather than other *** at these three criterions,this paper presents an edge detection algorithm based on matched ***,a matched filter was designed by analyzing the edge model for natural image,then the edge response was computed using the designed matched filter;secondly,the lower and discontinuous filtered responses were further suppressed using a dedicated one-dimension filter;finally,the edge image was obtained by binarizing the edge response with a local adaptive *** results illustrate that the proposed algorithm has more improvement than the Sobel and Canny operators in detection sensibility,precision and location ***,the algorithm can be implemented with parallel pipeline using FPGA,so it is also rather suitable for real-time applications.
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