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Signature Simulation of Mixed Materials

机译:混合材料的签名模拟

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摘要

Soil target signatures vary due to geometry, chemical composition, and scene radiometry. Although radiative transfer models and function-fit physical models may describe certain targets in limited depth, the ability to incorporate all three signature variables is difficult. This work describes a method to simulate the transient signatures of soil by first considering scene geometry synthetically created using 3D physics engines. Through the assignment of spectral data from the Nonconventional Exploitation Factors Data System (NEFDS), the synthetic scene is represented as a physical mixture of particles. Finally, first principles radiometry is modeled using the Digital Imaging and Remote Sensing Image Generation (DIRSIG) model. With DIRSIG, radiometric and sensing conditions were systematically manipulated to produce and record goniometric signatures. The implementation of this virtual goniometer allows users to examine how a target bidirectional reflectance distribution function (BRDF) will change with geometry, composition, and illumination direction. By using 3D computer graphics models, this process does not require geometric assumptions that are native to many radiative transfer models. It delivers a discrete method to circumnavigate the significant cost of time and treasure associated with hardware-based goniometric data collections.
机译:土壤目标特征因几何形状,化学成分和场景辐射测定法而异。尽管辐射传递模型和功能拟合的物理模型可能会在有限的深度内描述某些目标,但合并所有三个特征变量的能力却很困难。这项工作描述了一种通过首先考虑使用3D物理引擎综合创建的场景几何来模拟土壤瞬态特征的方法。通过分配来自非常规开发因子数据系统(NEFDS)的光谱数据,将合成场景表示为粒子的物理混合物。最后,使用数字成像和遥感图像生成(DIRSIG)模型对辐射原理进行建模。借助DIRSIG,可以系统地控制辐射和传感条件,以产生和记录测角特征。该虚拟测角仪的实现使用户可以检查目标双向反射率分布函数(BRDF)将如何随着几何形状,成分和照明方向而变化。通过使用3D计算机图形模型,此过程不需要许多辐射传递模型固有的几何假设。它提供了一种离散方法来规避与基于硬件的测角数据收集相关的大量时间和金钱。

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