Kniha Feature Selection for Anomaly Detection in Hyperspectral Data Songyot Nakariyakul

Feature Selection for Anomaly Detection in Hyperspectral Data

Jazyk: Angličtina
Vazba: Brožovaná
Vydavatel: VDM Verlag
Dostupnost: Skladem u dodavatele
Odesíláme za 14-21 dnů
1 583
Over the past decade, use of hyperspectral imagery §has been intensively investigated for agricultur...

Informace o knize

Jazyk
Angličtina
Vazba
Kniha - Brožovaná
Vydáno
2009
Stránek
184
EAN
9783639168280
ISBN
3639168283
Enbook ID
06825189
Vydavatel
Hmotnost
277
Rozměry
152 x 229 x 11

Kompletní popis

Over the past decade, use of hyperspectral imagery §has been intensively investigated for agricultural §product inspection, since it introduces a new §noninvasive machine-vision method that gives a very §accurate inspection rate. The spectral information §in hyperspectral data uniquely characterizes and §identifies the chemical and/or physical properties §of the constituent parts of an agricultural product §that are useful for product inspection. One of the §main problems in using these high-dimensional data §is that there are often not enough training samples. §This book, therefore, provides novel feature §selection algorithms to effectively reduce the §dimensionality of hyperspectral data. Experimental §results comparing the proposed algorithms to other §well-known feature selection algorithms are §presented for two case studies in chicken carcass §inspection. This book provides insightful §discussions on feature selection for hyperspectral §data for specific food safety applications and §should be especially useful to engineers and §scientists who are interested in pattern §recognition, hyperspectral data processing, food §safety research, and data mining.

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