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Sung Jin Hwang

5 accepted papers

2022

VCT: A Video Compression Transformer

NeurIPS 2022accept

We show how transformers can be used to vastly simplify neural video compression. Previous methods have been relying on an increasing number of architectural biases and priors, including motion prediction and warping operations, resulting in complex models. Instead, we independently map input frames…

2020

Scale-Space Flow for End-to-End Optimized Video Compression

CVPR 2020poster

Despite considerable progress on end-to-end optimized deep networks for image compression, video coding remains a challenging task. Recently proposed methods for learned video compression use optical flow and bilinear warping for motion compensation and show competitive rate-distortion performance r…

Cited by 382PDFScholar
2018

Improved Lossy Image Compression With Priming and Spatially Adaptive Bit Rates for Recurrent Networks

CVPR 2018poster

We propose a method for lossy image compression based on recurrent, convolutional neural networks that outper- forms BPG (4:2:0), WebP, JPEG2000, and JPEG as mea- sured by MS-SSIM. We introduce three improvements over previous research that lead to this state-of-the-art result us- ing a single model…

Cited by 483SourcePDFScholar
2018

Variational image compression with a scale hyperprior

ICLR 2018poster

We describe an end-to-end trainable model for image compression based on variational autoencoders. The model incorporates a hyperprior to effectively capture spatial dependencies in the latent representation. This hyperprior relates to side information, a concept universal to virtually all modern im…

Cited by 2215SourcePDFScholar
2017

Full Resolution Image Compression With Recurrent Neural Networks

CVPR 2017oral

This paper presents a set of full-resolution lossy image compression methods based on neural networks. Each of the architectures we describe can provide variable compression rates during deployment without requiring retraining of the network: each network need only be trained once. All of our archit…

Cited by 1111PDFScholar