Calibrating Wireless Ray Tracing for Digital Twinning Using Local Phase Error Estimates

Clement Ruah;Osvaldo Simeone;Jakob Hoydis;Bashir Al-Hashimi
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Abstract

Embodying the principle of simulation intelligence, digital twin (DT) systems construct and maintain a high-fidelity virtual model of a physical system. This paper focuses on ray tracing (RT), which is widely seen as an enabling technology for DTs of the radio access network (RAN) segment of next-generation disaggregated wireless systems. RT makes it possible to simulate channel conditions, enabling data augmentation and prediction-based transmission. However, the effectiveness of RT hinges on the adaptation of the electromagnetic properties assumed by the RT to actual channel conditions, a process known as calibration. The main challenge of RT calibration is the fact that small discrepancies in the geometric model fed to the RT software hinder the accuracy of the predicted phases of the simulated propagation paths. Existing solutions to this problem either rely on the channel power profile, hence disregarding phase information, or they operate on the channel responses by assuming the simulated phases to be sufficiently accurate for calibration. This paper proposes a novel channel response-based scheme that, unlike the state of the art, estimates and compensates for the phase errors in the RT-generated channel responses. The proposed approach builds on the variational expectation maximization algorithm with a flexible choice of the prior phase-error distribution that bridges between a deterministic model with no phase errors and a stochastic model with uniform phase errors. The algorithm is computationally efficient, and is demonstrated, by leveraging the open-source differentiable RT software available within the Sionna library, to outperform existing methods in terms of the accuracy of RT predictions.
利用局部相位误差估算校准数字孪生的无线光线跟踪
数字孪生(DT)系统体现了仿真智能原理,构建并维护物理系统的高保真虚拟模型。本文的重点是光线跟踪(RT),它被广泛视为下一代分解无线系统中无线接入网(RAN)部分的数字孪生系统的一项使能技术。RT 可以模拟信道条件,实现数据增强和基于预测的传输。然而,RT 的有效性取决于 RT 假设的电磁特性是否适应实际信道条件,这一过程称为校准。RT 校准的主要挑战在于,输入 RT 软件的几何模型中存在的微小差异会影响模拟传播路径预测相位的准确性。针对这一问题的现有解决方案要么依赖于信道功率曲线,从而忽略了相位信息;要么假设模拟相位足够精确,从而对信道响应进行校准。本文提出了一种新颖的基于信道响应的方案,与现有技术不同的是,它能估计和补偿 RT 生成的信道响应中的相位误差。所提出的方法以变分期望最大化算法为基础,灵活选择先验相位误差分布,在无相位误差的确定性模型和均匀相位误差的随机模型之间搭建桥梁。该算法计算效率高,通过利用 Sionna 库中的开源可微分 RT 软件,在 RT 预测精度方面优于现有方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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