Fast Edge-Aware Occlusion Detection in the Context of Multispectral Camera Arrays

Fuente: arXiv
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Hauptverfasser: Sippel, Frank, Seiler, Jürgen, Kaup, André
Format: Preprint
Veröffentlicht: 2024
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author Sippel, Frank
Seiler, Jürgen
Kaup, André
author_facet Sippel, Frank
Seiler, Jürgen
Kaup, André
contents Multispectral imaging is very beneficial in diverse applications, like healthcare and agriculture, since it can capture absorption bands of molecules in different spectral areas. A promising approach for multispectral snapshot imaging are camera arrays. Image processing is necessary to warp all different views to the same view to retrieve a consistent multispectral datacube. This process is also called multispectral image registration. After a cross spectral disparity estimation, an occlusion detection is required to find the pixels that were not recorded by the peripheral cameras. In this paper, a novel fast edge-aware occlusion detection is presented, which is shown to reduce the runtime by at least a factor of 12. Moreover, an evaluation on ground truth data reveals better performance in terms of precision and recall. Finally, the quality of a final multispectral datacube can be improved by more than 1.5 dB in terms of PSNR as well as in terms of SSIM in an existing multispectral registration pipeline. The source code is available at \url{https://github.com/FAU-LMS/fast-occlusion-detection}.
format Preprint
id arxiv_https___arxiv_org_abs_2408_14050
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Fast Edge-Aware Occlusion Detection in the Context of Multispectral Camera Arrays
Sippel, Frank
Seiler, Jürgen
Kaup, André
Image and Video Processing
Multispectral imaging is very beneficial in diverse applications, like healthcare and agriculture, since it can capture absorption bands of molecules in different spectral areas. A promising approach for multispectral snapshot imaging are camera arrays. Image processing is necessary to warp all different views to the same view to retrieve a consistent multispectral datacube. This process is also called multispectral image registration. After a cross spectral disparity estimation, an occlusion detection is required to find the pixels that were not recorded by the peripheral cameras. In this paper, a novel fast edge-aware occlusion detection is presented, which is shown to reduce the runtime by at least a factor of 12. Moreover, an evaluation on ground truth data reveals better performance in terms of precision and recall. Finally, the quality of a final multispectral datacube can be improved by more than 1.5 dB in terms of PSNR as well as in terms of SSIM in an existing multispectral registration pipeline. The source code is available at \url{https://github.com/FAU-LMS/fast-occlusion-detection}.
title Fast Edge-Aware Occlusion Detection in the Context of Multispectral Camera Arrays
topic Image and Video Processing
url https://arxiv.org/abs/2408.14050