This paper describes an image compression strategy potentially capable of preserving the scientific quality of astrophysical data, simultaneously allowing a consistent bandwidth reduction to be achieved. Unlike strictly lossless techniques, by which moderate compression ratios are attainable, and conventional lossy techniques, in which the mean squared error of the decoded data is globally controlled by user, near-lossless methods are capable to locally constrain the maximum absolute error, based on user's requirements. An advanced lossless/near-lossless differential pulse code modulation (DPCM) scheme, recently introduced by the authors and relying on a causal spatial prediction, is adjusted to the specific characteristics of astrophysical image data (high radiometric resolution, generally low noise, etc.). The background noise is preliminarily estimated to drive the quantization stage for high quality, which is the primary concern in most of astrophysical applications. Extensive experimental results of lossless, near-lossless, and lossy compression of astrophysical images acquired by the Hubble Space Telescope show the advantages of the proposed method compared to standard techniques like JPEG-LS and JPEG2000. Eventually, the rationale of virtually-lossless compression, that is a noise-adjusted lossles/near-lossless compression, is highlighted and found to be in accordance with concepts well established for the astronomers' community.

Virtually lossless compression of scientific data: an application to astrophysical images

B Aiazzi;L Alparone;S Baronti;C Lastri;
2005

Abstract

This paper describes an image compression strategy potentially capable of preserving the scientific quality of astrophysical data, simultaneously allowing a consistent bandwidth reduction to be achieved. Unlike strictly lossless techniques, by which moderate compression ratios are attainable, and conventional lossy techniques, in which the mean squared error of the decoded data is globally controlled by user, near-lossless methods are capable to locally constrain the maximum absolute error, based on user's requirements. An advanced lossless/near-lossless differential pulse code modulation (DPCM) scheme, recently introduced by the authors and relying on a causal spatial prediction, is adjusted to the specific characteristics of astrophysical image data (high radiometric resolution, generally low noise, etc.). The background noise is preliminarily estimated to drive the quantization stage for high quality, which is the primary concern in most of astrophysical applications. Extensive experimental results of lossless, near-lossless, and lossy compression of astrophysical images acquired by the Hubble Space Telescope show the advantages of the proposed method compared to standard techniques like JPEG-LS and JPEG2000. Eventually, the rationale of virtually-lossless compression, that is a noise-adjusted lossles/near-lossless compression, is highlighted and found to be in accordance with concepts well established for the astronomers' community.
2005
Istituto di Fisica Applicata - IFAC
Inglese
M.S. Schmalz
Proceedings of SPIE's 50th Annual Meeting, Mathematics of Data/Image Coding, Compression, and Encryption VIII, with Applications
SPIE 50th Annual Meeting
5915
59150O-1
59150O-12
12
9780819459206
http://proceedings.spiedigitallibrary.org/proceeding.aspx?articleid=870788
SPIE-International Society for Optical Engineering
Bellingham
STATI UNITI D'AMERICA
Sì, ma tipo non specificato
31 Luglio-4 Agosto 2005
San Diego - CA - USA
Hyperspectral data compression
Near-lossless coding
Virtually lossless compression
DPCM
astrophysical images
SPIE Vol. 5915, Mathematics of Data/Image Coding, Compression, and Encryption VIII, with Applications, M. S. Schmalz (Ed.), Sep. 2005, in press.
5
none
Aiazzi, B; Alparone, L; Baronti, S; Lastri, C; Nencini, F
273
info:eu-repo/semantics/conferenceObject
04 Contributo in convegno::04.01 Contributo in Atti di convegno
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/20.500.14243/146733
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