Hyperspectral Data Compression

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Hyperspectral Data Compression

Motta

Rok vydania: 2006

Vydavateľ: Springer

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O knihe:

Hyperspectral Data Compression provides a survey of recent results in the field of compression of remote sensed 3D data, with a particular interest in hyperspectral imagery. Chapter 1 addresses compression architecture, and reviews and compares compression methods. Chapters 2 through 4 focus on lossless compression (where the decompressed image must be bit for bit identical to the original). Chapter 5, contributed by the editors, describes a lossless algorithm based on vector quantization with extensions to near lossless and possibly lossy compression for efficient browning and pure pixel classification. Chapter 6 deals with near lossless compression while. Chapter 7 considers lossy techniques constrained by almost perfect classification. Chapters 8 through 12 address lossy compression of hyperspectral imagery, where there is a tradeoff between compression achieved and the quality of the decompressed image. Chapter 13 examines artifacts that can arise from lossy compression.

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Podrobnosti o titule (výrobné údaje):

Vydavateľstvo: Springer

Rok vydania: 2006

ISBN: 978-0-387-28579-5

(9780387285795)

Väzba: tvrdá