2014Unpublished venueRequires access

Multi-resolution and multi-spectral analysis for satellite images classification with fuzzy spatial relationships

B. Mselmi, Zouhaier Ben Rabah, Imed Riadh Farah, B. Solaiman

Open publisher page 1 citations

Abstract

Hyperspectral sensors (HS) are next-generation optical sensors that have excellent spectroscopic performance with hundreds of spectral bands. Multispectral sensors (MS) are conventional optical sensors that have a few tens of spectral bands with high spatial resolution. This work aims to combine, the spectral information of the hyperspectral image with the spatial and spectral information of the multispectral image for automatic classification while considering spatial relationships between sources in low-spatial resolution data. The considered approach is validated first by using synthetic images from the USGS spectral library, but also using Hyperion sensor as hyperspectral image. And SPOT sensor as multispectral image, representing the region of Gabes Matmata in southern Tunisia.

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What this paper is about

Hyperspectral sensors (HS) are next-generation optical sensors that have excellent spectroscopic performance with hundreds of spectral bands. Multispectral sensors (MS) are conventional optical sensors that have a few tens of spectral bands with high spatial resolution. This work aims to combine, the spectral information of the hyperspectral image with the spatial and spectral information of the multispectral image for automatic classification while considering spatial relationships between sources in low-spatial resolution data. The considered approach is validated first by using synthetic images from the USGS spectral library, but also using Hyperion sensor as hyperspectral image. And SPOT sensor as multispectral image, representing the region of Gabes Matmata in southern Tunisia.

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Available abstract

Hyperspectral sensors (HS) are next-generation optical sensors that have excellent spectroscopic performance with hundreds of spectral bands. Multispectral sensors (MS) are conventional optical sensors that have a few tens of spectral bands with high spatial resolution. This work aims to combine, the spectral information of the hyperspectral image with the spatial and spectral information of the multispectral image for automatic classification while considering spatial relationships between sources in low-spatial resolution data. The considered approach is validated first by using synthetic images from the USGS spectral library, but also using Hyperion sensor as hyperspectral image. And SPOT sensor as multispectral image, representing the region of Gabes Matmata in southern Tunisia.

Key concepts: Multispectral image, Hyperspectral imaging, Remote sensing, Image resolution, Full spectral imaging, Spectral resolution, Spectral bands, Satellite

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