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Cheeun Hong

4 accepted papers

2024

Overcoming Distribution Mismatch in Quantizing Image Super-Resolution Networks

ECCV 2024poster

"Although quantization has emerged as a promising approach to reducing computational complexity across various high-level vision tasks, it inevitably leads to accuracy loss in image super-resolution (SR) networks. This is due to the significantly divergent feature distributions across different chan…

2022

Attentive Fine-Grained Structured Sparsity for Image Restoration

CVPR 2022poster

Image restoration tasks have witnessed great performance improvement in recent years by developing large deep models. Despite the outstanding performance, the heavy computation demanded by the deep models has restricted the application of image restoration. To lift the restriction, it is required to…

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2022

CADyQ: Content-Aware Dynamic Quantization for Image Super-Resolution

ECCV 2022poster

"Despite breakthrough advances in image super-resolution (SR) with convolutional neural networks (CNNs), SR has yet to enjoy ubiquitous applications due to the high computational complexity of SR networks. Quantization is one of the promising approaches to solve this problem. However, existing metho…