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cs.CV2025

Frequency-Aware Token Reduction for Efficient Vision Transformer

Dong-Jae Lee, Jiwan Hur, Jaehyun Choi +2

Vision Transformers have demonstrated exceptional performance across various computer vision tasks, yet their quadratic computational complexity concerning token length remains a s…

cs.RO2025

SynAD: Enhancing Real-World End-to-End Autonomous Driving Models through Synthetic Data Integration

Jongsuk Kim, Jaeyoung Lee, Gyojin Han +3

Recent advancements in deep learning and the availability of high-quality real-world driving datasets have propelled end-to-end autonomous driving. Despite this progress, relying s…

cs.CV2025

DMQ: Dissecting Outliers of Diffusion Models for Post-Training Quantization

Dongyeun Lee, Jiwan Hur, Hyounguk Shon +2

Diffusion models have achieved remarkable success in image generation but come with significant computational costs, posing challenges for deployment in resource-constrained enviro…

cs.CV2025

DAM: Domain-Aware Module for Multi-Domain Dataset Condensation

Jaehyun Choi, Gyojin Han, Dong-Jae Lee +2

Dataset Condensation (DC) has emerged as a promising solution to mitigate the computational and storage burdens associated with training deep learning models. However, existing DC…

cs.CV2025

Self-supervised Transformation Learning for Equivariant Representations

Jaemyung Yu, Jaehyun Choi, Dong-Jae Lee +2

Unsupervised representation learning has significantly advanced various machine learning tasks. In the computer vision domain, state-of-the-art approaches utilize transformations l…