Sub-pixel mapping and sub-pixel sharpening using neural network predicted wavelet coefficients
Sub-pixel mapping and sub-pixel sharpening are techniques for increasing the spatial resolution of sub-pixel image classifications. The proposed method makes use of wavelets and artificial neural networks. Wavelet multiresolution analysis facilitates the link between different resolution levels. In...
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Published in | Remote sensing of environment Vol. 91; no. 2; pp. 225 - 236 |
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Main Authors | , , , |
Format | Journal Article |
Language | English |
Published |
New York, NY
Elsevier Inc
30.05.2004
Elsevier Science |
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Abstract | Sub-pixel mapping and sub-pixel sharpening are techniques for increasing the spatial resolution of sub-pixel image classifications. The proposed method makes use of wavelets and artificial neural networks. Wavelet multiresolution analysis facilitates the link between different resolution levels. In this work a higher resolution image is constructed after estimation of the detail wavelet coefficients with neural networks. Detail wavelet coefficients are used to synthesize the high-resolution approximation. The applied technique allows for both sub-pixel sharpening and sub-pixel mapping. An algorithm was developed on artificial imagery and tested on artificial as well as real synthetic imagery. The proposed method resulted in images with higher spatial resolution showing more spatial detail than the source imagery. Evaluation of the algorithm was performed both visually and quantitatively using established classification accuracy indices. |
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AbstractList | Sub-pixel mapping and sub-pixel sharpening are techniques for increasing the spatial resolution of sub-pixel image classifications. The proposed method makes use of wavelets and artificial neural networks. Wavelet multiresolution analysis facilitates the link between different resolution levels. In this work a higher resolution image is constructed after estimation of the detail wavelet coefficients with neural networks. Detail wavelet coefficients are used to synthesize the high-resolution approximation. The applied technique allows for both sub-pixel sharpening and sub-pixel mapping. An algorithm was developed on artificial imagery and tested on artificial as well as real synthetic imagery. The proposed method resulted in images with higher spatial resolution showing more spatial detail than the source imagery. Evaluation of the algorithm was performed both visually and quantitatively using established classification accuracy indices. |
Author | Westra, Toon Mertens, Koen C. Verbeke, Lieven P.C. De Wulf, Robert R. |
Author_xml | – sequence: 1 givenname: Koen C. surname: Mertens fullname: Mertens, Koen C. email: koen.mertens@ugent.be – sequence: 2 givenname: Lieven P.C. surname: Verbeke fullname: Verbeke, Lieven P.C. – sequence: 3 givenname: Toon surname: Westra fullname: Westra, Toon – sequence: 4 givenname: Robert R. surname: De Wulf fullname: De Wulf, Robert R. email: robert.dewulf@ugent.be |
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Keywords | Sub-pixel mapping Wavelets Neural networks Sub-pixel sharpening Resolution algorithms maps Spot Europe Space remote sensing neural networks accuracy cartography classification image analysis imagery spatial resolution Pixel high resolution |
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SubjectTerms | Applied geophysics Areal geology. Maps Earth sciences Earth, ocean, space Exact sciences and technology Geologic maps, cartography Internal geophysics Neural networks Resolution Sub-pixel mapping Sub-pixel sharpening Wavelets |
Title | Sub-pixel mapping and sub-pixel sharpening using neural network predicted wavelet coefficients |
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