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Hyperspectral Data Exploitation: Theory and Applications [Hardcover]

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  • Category: Books (Technology & Engineering)
  • Author:  Chang, Chein-I
  • Author:  Chang, Chein-I
  • ISBN-10:  0471746975
  • ISBN-10:  0471746975
  • ISBN-13:  9780471746973
  • ISBN-13:  9780471746973
  • Publisher:  Wiley-Interscience
  • Publisher:  Wiley-Interscience
  • Pages:  440
  • Pages:  440
  • Binding:  Hardcover
  • Binding:  Hardcover
  • Pub Date:  01-May-2007
  • Pub Date:  01-May-2007
  • SKU:  0471746975-11-MPOD
  • SKU:  0471746975-11-MPOD
  • Item ID: 104720332
  • List Price: $193.50
  • Seller: ShopSpell
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  • Delivery by: Oct 12 to Oct 14
  • Notes: Brand New Item. Not shipped to AK, HI, APO, FPO, AE.
Authored by a panel of experts in the field, this book focuses on hyperspectral image analysis, systems, and applications. With discussion of application-based projects and case studies, this professional reference will?bring you up-to-date on this pervasive technology, wether you are working in the military and defense fields, or in remote sensing technology, geoscience, or agriculture.Preface.

Contributors.

1.?Overview (Chein-I Chang).

I TUTORALS.

2.?Hyperspectral Imaging Systems (John P. Kerekes and John R. Schott).

3. Information-Processed Matched Filters for Hyperspectral Target Detection and Classification (Chein-I Chang).

II THEORY.

4. An Optical Real-Time Adaptive Spectral Identification System (ORASIS) (Jeffery H. Bowles and David B. Gillis).

5. Stochastic Mixture Modeling (Michael T. Eismann1 and David W. J. Stein).

6. Unmixing Hyperspectral Data: Independent and Dependent Component Analysis (Jose M.P. Nascimento1 and Jose M.B. Dias).

7. Maximum Volume Transform For Endmember Spectra Determination (Michael E. Winter).

8. Hyperspectral Data Representation (Xiuping Jia and John A. Richards).

9. Optimal Band Selection and Utility Evaluation for Spectral Systems (Sylvia S. Shen).

10. Feature Reduction for Classification Purpose (Sebastiano B. Serpico, Gabriele Moser, and Andrea F. Cattoni).

11. Semi-supervised Support Vector Machines for Classification of Hyperspectral Remote Sensing Images (Lorenzo Bruzzone, Mingmin Chi, and Mattia Marconcini).

III APPLICATIONS.

12. Decision Fusion for Hyperspectral Classification (Mathieu Fauvel, Jocelyn Chanussot, and Jon Atli Benediktsson)

13. Morphological HlÓu

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