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Runsen Feng

5 accepted papers

2024

End-to-End Rate-Distortion Optimized 3D Gaussian Representation

ECCV 2024poster

"3D Gaussian Splatting (3DGS) has become an emerging technique with remarkable potential in 3D representation and image rendering. However, the substantial storage overhead of 3DGS significantly impedes its practical applications. In this work, we formulate the compact 3D Gaussian learning as an end…

2023

Semantically Structured Image Compression via Irregular Group-Based Decoupling

ICCV 2023poster

Image compression techniques typically focus on compressing rectangular images for human consumption, however, resulting in transmitting redundant content for downstream applications. To overcome this limitation, some previous works propose to semantically structure the bitstream, which can meet spe…

Cited by 13PDFScholar
2022

Image Coding for Machines with Omnipotent Feature Learning

ECCV 2022poster

"Image Coding for Machines (ICM) aims to compress images for AI tasks analysis rather than meeting human perception. Learning a kind of feature that is both general (for AI tasks) and compact (for compression) is pivotal for its success. In this paper, we attempt to develop an ICM framework by learn…

2021

Soft then Hard: Rethinking the Quantization in Neural Image Compression

ICML 2021spotlight

Quantization is one of the core components in lossy image compression. For neural image compression, end-to-end optimization requires differentiable approximations of quantization, which can generally be grouped into three categories: additive uniform noise, straight-through estimator and soft-to-ha…

Cited by 92SourcePDFScholar