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Prior-Based Quantization Bin Matching for Cloud Storage of JPEG Images

  • School of Computer Science and Technology, Harbin Institute of Technology
  • National Institute of Informatics
  • National Tsing Hua University
  • Peking University

Research output: Contribution to journalArticlepeer-review

Abstract

Millions of user-generated images are uploaded to social media sites like Facebook daily, which translate to a large storage cost. However, there exists an asymmetry in upload and download data: only a fraction of the uploaded images are subsequently retrieved for viewing. In this paper, we propose a cloud storage system that reduces the storage cost of all uploaded JPEG photos, at the expense of a controlled increase in computation mainly during download of requested image subset. Specifically, the system first selectively re-encodes code blocks of uploaded JPEG images using coarser quantization parameters for smaller storage sizes. Then during download, the system exploits known signal priors-sparsity prior and graph-signal smoothness prior-for reverse mapping to recover original fine quantization bin indices, with either deterministic guarantee (lossless mode) or statistical guarantee (near-lossless mode). For fast reverse mapping, we use small dictionaries and sparse graphs that are tailored for specific clusters of similar blocks, which are classified via tree-structured vector quantizer. During image upload, cluster indices identifying the appropriate dictionaries and graphs for the re-quantized blocks are encoded as side information using a differential distributed source coding scheme to facilitate reverse mapping during image download. Experimental results show that our system can reap significant storage savings (up to 12.05%) at roughly the same image PSNR (within 0.18 dB).

Original languageEnglish
Pages (from-to)3222-3235
Number of pages14
JournalIEEE Transactions on Image Processing
Volume27
Issue number7
DOIs
StatePublished - Jul 2018
Externally publishedYes

Keywords

  • Cloud storage
  • graph signal processing
  • image compression
  • signal quantization

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