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Ray tracing propagation modeling for future small-cell and indoor applications: A review of current techniques

机译:未来小型蜂窝和室内应用的光线跟踪传播建模:当前技术的回顾

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摘要

Applied for the first time to mobile radio propagation modeling at the beginning of the nineties, ray tracing is now living a second youth. It is probably the best model to assist in the design and planning of future short-range, millimeter-wave wireless systems, where the more limited propagation environment with respect to UHF frequencies allows to overcome traditional high-CPU time limitations while the higher operating frequency makes ray-optics approximations less drastic and allows to achieve an unprecedented level of accuracy. An overview of ray tracing propagation modeling is given in this paper, with a special attention to future prospects and applications. In particular, frontiers of ray-based propagation modeling such as extension to diffuse scattering, multidimensional channel characterization, multiple-input multiple-output (MIMO) capacity assessments, and future applications such as real-time ray tracing are addressed in the paper with reference to the work recently carried out at the University of Bologna.
机译:在90年代初首次将其应用于移动无线电传播建模时,射线追踪现在又焕发了青春。它可能是协助设计和规划未来短距离毫米波无线系统的最佳模型,其中相对于UHF频率的传播环境更加有限,可以克服传统的高CPU时间限制,而更高的工作频率使光线光学近似度不再那么剧烈,并可以实现前所未有的精度。本文概述了射线追踪传播模型,并特别关注未来的前景和应用。特别是,本文参考了基于射线的传播建模的前沿领域,例如扩展到漫射散射,多维通道表征,多输入多输出(MIMO)容量评估以及诸如实时射线追踪之类的未来应用。最近在博洛尼亚大学进行的工作。

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