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20242026
most citedMiLe Loss: a New Entropy-Weighed Loss for Mitigating the Bias of Learning Difficulties in Large Language Models

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cs.CV2024

YOLO-UniOW: Efficient Universal Open-World Object Detection

Lihao Liu, Juexiao Feng, Hui Chen +4

Traditional object detection models are constrained by the limitations of closed-set datasets, detecting only categories encountered during training. While multimodal models have e…

cs.CV2024

Promptable Anomaly Segmentation with SAM Through Self-Perception Tuning

Hui-Yue Yang, Hui Chen, Ao Wang +7

Segment Anything Model (SAM) has made great progress in anomaly segmentation tasks due to its impressive generalization ability. However, existing methods that directly apply SAM t…

cs.CV2024

[CLS] Token Tells Everything Needed for Training-free Efficient MLLMs

Ao Wang, Fengyuan Sun, Hui Chen +3

Multimodal Large Language Models (MLLMs) have recently demonstrated strong performance across a wide range of vision-language tasks, garnering significant attention in the computer…

cs.CV2024

YOLOv10: Real-Time End-to-End Object Detection

Ao Wang, Hui Chen, Lihao Liu +4

Over the past years, YOLOs have emerged as the predominant paradigm in the field of real-time object detection owing to their effective balance between computational cost and detec…

cs.CV2024

Context Enhancement with Reconstruction as Sequence for Unified Unsupervised Anomaly Detection

Hui-Yue Yang, Hui Chen, Lihao Liu +5

Unsupervised anomaly detection (AD) aims to train robust detection models using only normal samples, while can generalize well to unseen anomalies. Recent research focuses on a uni…

cs.CV2024

Towards Efficient Vision-Language Tuning: More Information Density, More Generalizability

Tianxiang Hao, Mengyao Lyu, Hui Chen +4

With the advancement of large pre-trained vision-language models, effectively transferring the knowledge embedded within these foundational models to downstream tasks has become a…