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Enhanced Quality-Aware Scalable Underwater Image Compression

  • Linwei ZHU
  • , Junhao ZHU
  • , Xu ZHANG
  • , Huan ZHANG
  • , Ye LI
  • , Runmin CONG
  • , Sam KWONG

Research output: Journal PublicationsJournal Article (refereed)peer-review

Abstract

Underwater imaging plays a pivotal role in marine exploration and ecological monitoring. However, it faces significant challenges of limited transmission bandwidth and severe distortion in the aquatic environment. In this work, to achieve the target of both underwater image compression and enhancement simultaneously, an enhanced quality-aware scalable underwater image compression framework is presented, which comprises a Base Layer (BL) and an Enhancement Layer (EL). In the BL, the underwater image is represented by a controllable number of non-zero sparse coefficients for coding bits saving. Furthermore, the underwater image enhancement dictionary is derived with shared sparse coefficients to make reconstruction close to the enhanced version. In the EL, a dual-branch filter comprising rough filtering and detail refinement branches is designed to produce a pseudo-enhanced version for residual redundancy removal and to improve the quality of final reconstruction. Extensive experimental results demonstrate that the proposed scheme outperforms the state-of-the-art works under five large-scale underwater image datasets in terms of Underwater Image Quality Measure (UIQM).
Original languageEnglish
Article number174
Pages (from-to)1-19
Number of pages19
JournalACM Transactions on Multimedia Computing, Communications, and Applications
Volume22
Issue number6
Early online date8 Jun 2026
DOIs
Publication statusPublished - Jun 2026

Bibliographical note

Publisher Copyright:
© 2026 Copyright held by the owner/author(s).

Funding

This work was supported in part by the National Natural Science Foundation of China under Grants 61901459 and 62302105, in part by the Guangdong Basic and Applied Basic Research Foundation under Grant 2025A1515012127, in part by Science and Technology Projects in Guangzhou under Grant 2025A04J3851, in part by the Shenzhen Science and Technology Program under Grant JCYJ20230807140707015 and SGDX2024011505505010, in part by the Intelligent Policing Key Laboratory of Sichuan Province under Grant ZNJW2025KFQN002, in part by the Technology Innovation Project of Offshore Engineering Solutions Co., Ltd., CNOOC (China National Offshore Oil Corporation) under Grant 202612484183.

Keywords

  • Underwater image
  • enhancement
  • image compression

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