• DocumentCode
    3254338
  • Title

    An overview of lossless digital image compression techniques

  • Author

    Yang, Ming ; Bourbakis, Nikolaos

  • Author_Institution
    Inf. Technol. Res. Inst., Wright State Univ., Dayton, OH, USA
  • fYear
    2005
  • fDate
    7-10 Aug. 2005
  • Firstpage
    1099
  • Abstract
    Lossless compression is necessary for many high performance applications such as geophysics, telemetry, nondestructive evaluation, and medical imaging, which require exact recoveries of original images. Lossless image compression can be always modeled as a two-stage procedure: decorrelation and entropy coding. The first stage removes spatial redundancy or inter-pixel redundancy by means of run-length coding, SCAN language based methodology, predictive techniques, transform techniques, and other types of decorrelation techniques. The second stage, which includes Huffman coding, arithmetic coding, and LZW, removes coding redundancy. Nowadays, the performances of entropy coding techniques are very close to its theoretical bound, and thus more research activities concentrate on decorrelation stage. JPEG-LS and JPEG-2000 are the latest ISO/ITU standards for compressing continuous-tone images. JPEG-LS is based on LOCO-I algorithm, which was chosen to incorporate the standard due to its good balance between complexity and efficiency. Another technique proposed for JPEG-LS was CALIC. JPEG-2000 was designed with the main objective of providing efficient compression for a wide range of compression ratios.
  • Keywords
    Huffman codes; ISO standards; arithmetic codes; entropy codes; image coding; runlength codes; Huffman coding; JPEG-2000; JPEG-LS; LZW; SCAN language based methodology; arithmetic coding; coding redundancy; coding standards; decorrelation techniques; entropy coding techniques; image coding; inter-pixel redundancy; lossless digital image compression techniques; predictive techniques; run-length coding; spatial redundancy; transform techniques; Biomedical imaging; Decorrelation; Digital images; Entropy coding; Geophysics; Huffman coding; ISO standards; Image coding; Performance loss; Telemetry;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Circuits and Systems, 2005. 48th Midwest Symposium on
  • Print_ISBN
    0-7803-9197-7
  • Type

    conf

  • DOI
    10.1109/MWSCAS.2005.1594297
  • Filename
    1594297