DocumentCode
297711
Title
Lossless compression of multispectral images using permutations
Author
Arnavut, Ziya ; Narumalani, Sunil
Author_Institution
Dept. of Geogr. & Geol., Nebraska Univ., Omaha, NE, USA
Volume
1
fYear
1996
fDate
27-31 May 1996
Firstpage
463
Abstract
It is well recognized within the remote sensing community that there exists spectral correlation between bands 1, 2, and 3 (which represent reflected blue, green, and red light respectively), and also bands 5 and 7 (which are reflected middle-infrared bands) of the Landsat Thematic Mapper (TM) multispectral image. In this paper, we are presenting the outcome of some experiments which use the spectral correlation as well as spatial correlation of the brightness values (BVs) to compress the TM multispectral data. Our method compresses one of the bands using the standard JPEG compression, and then orders the next band´s data with respect to the previous band´s sorting permutation. Then, a move to front coding technique is used to lower the source entropy, before actually encoding the data. It has been observed that our method yields tremendous gain on the visible bands (on the average 0.4-0.6 bpp) and can be successfully used for multispectral images where the spectral distances are closer
Keywords
entropy codes; geophysical signal processing; image coding; remote sensing; source coding; JPEG compression; Landsat Thematic Mapper; band 1; band 2; band 3; band 5; band 7; brightness values; lossless compression; move to front coding technique; multispectral images; permutations; remote sensing; source entropy; spatial correlation; spectral correlation; Brightness; Encoding; Entropy; Image coding; Image recognition; Multispectral imaging; Remote sensing; Satellites; Sorting; Transform coding;
fLanguage
English
Publisher
ieee
Conference_Titel
Geoscience and Remote Sensing Symposium, 1996. IGARSS '96. 'Remote Sensing for a Sustainable Future.', International
Conference_Location
Lincoln, NE
Print_ISBN
0-7803-3068-4
Type
conf
DOI
10.1109/IGARSS.1996.516374
Filename
516374
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