Elshimy Mohamed A, Hranilovic Steve
Department of Electrical and Computer Engineering, McMaster University, 1280 Main Street West, Hamilton, Ontario L8S 4K1, Canada.
J Opt Soc Am A Opt Image Sci Vis. 2011 Mar 1;28(3):420-8. doi: 10.1364/JOSAA.28.000420.
In this paper, a geometrical propagation model is developed that generalizes the classical single-scatter model under the assumption of first-order scattering and non-line-of-sight (NLOS) communication. The generalized model considers the case of a noncoplanar geometry, where it overcomes the restriction that the transmitter and the receiver cone axes lie in the same plane. To verify the model, a Monte Carlo (MC) radiative transfer model based on a photon transport algorithm is constructed. Numerical examples for a wavelength of 266 nm are illustrated, which corresponds to a solar-blind NLOS UV communication system. A comparison of the temporal responses of the generalized model and the MC simulation results shows close agreement. Path loss and delay spread are also shown for different pointing directions.
本文开发了一种几何传播模型,该模型在一阶散射和非视距(NLOS)通信假设下推广了经典单散射模型。广义模型考虑了非共面几何情况,克服了发射机和接收机圆锥轴位于同一平面的限制。为了验证该模型,构建了基于光子传输算法的蒙特卡罗(MC)辐射传输模型。给出了波长为266nm的数值示例,其对应于日盲非视距紫外通信系统。广义模型的时间响应与MC仿真结果的比较显示出密切的一致性。还给出了不同指向方向的路径损耗和延迟扩展。