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期刊名:Ieee transactions on neural networks and learning systems

缩写:IEEE T NEUR NET LEAR

ISSN:2162-237X

e-ISSN:2162-2388

IF/分区:9.7/Q1

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Clinical Trial Case Reports Meta-Analysis RCT Review Systematic Review
Classical Article Case Reports Clinical Study Clinical Trial Clinical Trial Protocol Comment Comparative Study Editorial Guideline Letter Meta-Analysis Multicenter Study Observational Study Randomized Controlled Trial Review Systematic Review
Xudong Mou,Rui Wang,Bo Li et al. Xudong Mou et al.
The increasing volume of time series signals and the scarcity of labels make time series anomaly detection (TSAD) a natural fit for self-supervised deep learning. However, existing normality-based approaches face two key limitations: relyin...
Hongjie Jia,Junyi Chen,Qirong Mao et al. Hongjie Jia et al.
The rise of e-commerce and social media has overwhelmed systems with image data, challenging real-time clustering and recommendation. Although multistage or large-pretrained-model (LPM) assisted clustering methods achieve high accuracy, the...
Xuesong Wu,Tianlu Pan,Xueying Chen et al. Xuesong Wu et al.
Large-scale pavement distress distribution modeling is vital for optimizing pavement inspection systems (PISs), preventive maintenance, and overall infrastructure resilience. Generic urban computing, correlation-based, or spatiotemporal met...
Yao Liang,Yuwei Wang,Yi Zeng Yao Liang
Parameter efficiency and adaptability are key challenges in fine-tuning large language models (LLMs). Existing parameter-efficient fine-tuning (PEFT) methods such as low-rank adaptation (LoRA) reduce training cost but rely on fixed low-rank...
Yao Deng,Xian Zhong,Wenxuan Liu et al. Yao Deng et al.
RGB cameras capture rich texture with high spatial resolution, whereas event cameras offer superior temporal resolution and high dynamic range (HDR). Exploiting their complementarity can significantly improve object tracking in challenging ...
Zhiyong Hu,Chao Wang Zhiyong Hu
Active learning for regression (ALR) is a prevalent tool for learning functional relationships by selectively incorporating the most informative data. However, existing ALR methods suffer from the cold-start problem and focus solely on lear...
Jie Chu,Tong Su,Pei Liu et al. Jie Chu et al.
This work aims to tackle the all-in-one image restoration task, which seeks to handle multiple types of degradation with a single model. The primary challenge is to extract degradation representations from the input degraded images and use ...
Byeong-Jun Park,Dong Seog Han Byeong-Jun Park
We propose a neural network architecture grounded in high-dimensional hypercube topology. In contrast to conventional sequential or skip-connected designs, the proposed approach maps layers to the vertices of an $n$ -dimensional hypercube a...
Hao Zhang,Zhangli Zhou,Zhen Kan Hao Zhang
Task-guided agents demonstrate strong performance in a wide range of complex tasks. However, most existing task representation algorithms are tailored to specific contexts and struggle to generalize across diverse scenarios. Moreover, they ...
Ziyu Wang,Jian Li,Yiming Du et al. Ziyu Wang et al.
Incomplete multiview clustering (IMVC) aims to uncover shared cluster structures from data with partially missing views. Most existing approaches face a critical tradeoff: imputation-free methods struggle under high missingness, while imput...