Comprehensive Modeling of Camera Spectral and Color Behavior

Fuente: arXiv
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Main Authors: Abeysekera, Sanush K, Kuang, Ye Chow, Ooi, Melanie Po-Leen
Format: Preprint
Published: 2025
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author Abeysekera, Sanush K
Kuang, Ye Chow
Ooi, Melanie Po-Leen
author_facet Abeysekera, Sanush K
Kuang, Ye Chow
Ooi, Melanie Po-Leen
contents The spectral response of a digital camera defines the mapping between scene radiance and pixel intensity. Despite its critical importance, there is currently no comprehensive model that considers the end-to-end interaction between light input and pixel intensity output. This paper introduces a novel technique to model the spectral response of an RGB digital camera, addressing this gap. Such models are indispensable for applications requiring accurate color and spectral data interpretation. The proposed model is tested across diverse imaging scenarios by varying illumination conditions and is validated against experimental data. Results demonstrate its effectiveness in improving color fidelity and spectral accuracy, with significant implications for applications in machine vision, remote sensing, and spectral imaging. This approach offers a powerful tool for optimizing camera systems in scientific, industrial, and creative domains where spectral precision is paramount.
format Preprint
id arxiv_https___arxiv_org_abs_2507_04617
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Comprehensive Modeling of Camera Spectral and Color Behavior
Abeysekera, Sanush K
Kuang, Ye Chow
Ooi, Melanie Po-Leen
Image and Video Processing
Computer Vision and Pattern Recognition
The spectral response of a digital camera defines the mapping between scene radiance and pixel intensity. Despite its critical importance, there is currently no comprehensive model that considers the end-to-end interaction between light input and pixel intensity output. This paper introduces a novel technique to model the spectral response of an RGB digital camera, addressing this gap. Such models are indispensable for applications requiring accurate color and spectral data interpretation. The proposed model is tested across diverse imaging scenarios by varying illumination conditions and is validated against experimental data. Results demonstrate its effectiveness in improving color fidelity and spectral accuracy, with significant implications for applications in machine vision, remote sensing, and spectral imaging. This approach offers a powerful tool for optimizing camera systems in scientific, industrial, and creative domains where spectral precision is paramount.
title Comprehensive Modeling of Camera Spectral and Color Behavior
topic Image and Video Processing
Computer Vision and Pattern Recognition
url https://arxiv.org/abs/2507.04617