Benchmarking of data fusion algorithms in support of earth observation based Antarctic wildlife monitoring

Remote sensing is a rapidly developing tool for mapping the abundance and distribution of Antarctic wildlife. While both panchromatic and multispectral imagery have been used in this context, image fusion techniques have received little attention. We tasked seven widely-used fusion algorithms: Ehler...

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Published inISPRS journal of photogrammetry and remote sensing Vol. 113; pp. 124 - 143
Main Authors Witharana, Chandi, LaRue, Michelle A., Lynch, Heather J.
Format Journal Article
LanguageEnglish
Published Elsevier B.V 01.03.2016
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Online AccessGet full text
ISSN0924-2716
1872-8235
DOI10.1016/j.isprsjprs.2015.12.009

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Abstract Remote sensing is a rapidly developing tool for mapping the abundance and distribution of Antarctic wildlife. While both panchromatic and multispectral imagery have been used in this context, image fusion techniques have received little attention. We tasked seven widely-used fusion algorithms: Ehlers fusion, hyperspherical color space fusion, high-pass fusion, principal component analysis (PCA) fusion, University of New Brunswick fusion, and wavelet-PCA fusion to resolution enhance a series of single-date QuickBird-2 and Worldview-2 image scenes comprising penguin guano, seals, and vegetation. Fused images were assessed for spectral and spatial fidelity using a variety of quantitative quality indicators and visual inspection methods. Our visual evaluation elected the high-pass fusion algorithm and the University of New Brunswick fusion algorithm as best for manual wildlife detection while the quantitative assessment suggested the Gram-Schmidt fusion algorithm and the University of New Brunswick fusion algorithm as best for automated classification. The hyperspherical color space fusion algorithm exhibited mediocre results in terms of spectral and spatial fidelities. The PCA fusion algorithm showed spatial superiority at the expense of spectral inconsistencies. The Ehlers fusion algorithm and the wavelet-PCA algorithm showed the weakest performances. As remote sensing becomes a more routine method of surveying Antarctic wildlife, these benchmarks will provide guidance for image fusion and pave the way for more standardized products for specific types of wildlife surveys.
AbstractList Remote sensing is a rapidly developing tool for mapping the abundance and distribution of Antarctic wildlife. While both panchromatic and multispectral imagery have been used in this context, image fusion techniques have received little attention. We tasked seven widely-used fusion algorithms: Ehlers fusion, hyperspherical color space fusion, high-pass fusion, principal component analysis (PCA) fusion, University of New Brunswick fusion, and wavelet-PCA fusion to resolution enhance a series of single-date QuickBird-2 and Worldview-2 image scenes comprising penguin guano, seals, and vegetation. Fused images were assessed for spectral and spatial fidelity using a variety of quantitative quality indicators and visual inspection methods. Our visual evaluation elected the high-pass fusion algorithm and the University of New Brunswick fusion algorithm as best for manual wildlife detection while the quantitative assessment suggested the Gram-Schmidt fusion algorithm and the University of New Brunswick fusion algorithm as best for automated classification. The hyperspherical color space fusion algorithm exhibited mediocre results in terms of spectral and spatial fidelities. The PCA fusion algorithm showed spatial superiority at the expense of spectral inconsistencies. The Ehlers fusion algorithm and the wavelet-PCA algorithm showed the weakest performances. As remote sensing becomes a more routine method of surveying Antarctic wildlife, these benchmarks will provide guidance for image fusion and pave the way for more standardized products for specific types of wildlife surveys.
Author Lynch, Heather J.
Witharana, Chandi
LaRue, Michelle A.
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  fullname: Lynch, Heather J.
  organization: Dept. of Ecology and Evolution, Stony Brook University, Stony Brook, NY, USA
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Snippet Remote sensing is a rapidly developing tool for mapping the abundance and distribution of Antarctic wildlife. While both panchromatic and multispectral imagery...
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StartPage 124
SubjectTerms Algorithms
animal manures
Antarctic region
Antarctica
color
Computer vision
Data fusion
Guano
Image processing
monitoring
multispectral imagery
New Brunswick
Penguins
principal component analysis
Remote sensing
Seals
Spectra
surveys
vegetation
VHSR imagery
wildlife
Wildlife management
Title Benchmarking of data fusion algorithms in support of earth observation based Antarctic wildlife monitoring
URI https://dx.doi.org/10.1016/j.isprsjprs.2015.12.009
https://www.proquest.com/docview/1802201153
https://www.proquest.com/docview/1808126353
https://www.proquest.com/docview/2000546027
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