AI Article Synopsis

  • - The manuscript introduces a new polarimetric bidirectional reflectance distribution function (BRDF) model designed for hyperspectral and polarimetric signature modeling, improving on a previous four-parameter model to accommodate varied surface structures.
  • - The model presents a generalized approach to both Lambertian diffuse and pBRDF functions, allowing for the determination of three parameters from directional-hemispherical reflectance measurements, enhancing the development of multispectral polarimetric applications.
  • - This versatile model effectively simulates extreme surface types, like mirrors and dull or glossy painted surfaces, proving its predictive accuracy for various angles and scattering scenarios, making it valuable for polarimetric simulations and remote sensing.

Article Abstract

The purpose of the present manuscript is to present a polarimetric bidirectional reflectance distribution function (BRDF) model suitable for hyperspectral and polarimetric signature modelling. The model is based on a further development of a previously published four-parameter model that has been generalized in order to account for different types of surface structures (generalized Gaussian distribution). A generalization of the Lambertian diffuse model is presented. The pBRDF-functions are normalized using numerical integration. Using directional-hemispherical reflectance (DHR) measurements, three of the four basic parameters can be determined for any wavelength. This simplifies considerably the development of multispectral polarimetric BRDF applications. The scattering parameter has to be determined from at least one BRDF measurement. The model deals with linear polarized radiation; and in similarity with e.g. the facet model depolarization is not included. The model is very general and can inherently model extreme surfaces such as mirrors and Lambertian surfaces. The complex mixture of sources is described by the sum of two basic models, a generalized Gaussian/Fresnel model and a generalized Lambertian model. Although the physics inspired model has some ad hoc features, the predictive power of the model is impressive over a wide range of angles and scattering magnitudes. The model has been applied successfully to painted surfaces, both dull and glossy and also on metallic bead blasted surfaces. The simple and efficient model should be attractive for polarimetric simulations and polarimetric remote sensing.

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http://dx.doi.org/10.1364/OE.23.031253DOI Listing

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