构建融合3D点云与信号强度的室内射频地图数据集,助力无线网络精准规划。
An Indoor Radio Mapping Dataset Combining 3D Point Clouds and RSSI
- 结合高精度3D激光扫描与20组多房间实测信号数据
- 包含无人与有人场景,支持动态环境建模
- 适合无线网络优化、智能感知与通信系统研究者
支持实时视频分析、智能传感和扩展现实(XR)等带宽密集型、低延迟应用的智能设备数量持续增长,对室内环境中的可靠无线连接提出了更高要求。在此类环境中,精确的射频环境地图(REMs)可实现自适应网络规划与接入点(AP)布局优化。然而,由于室内环境复杂多变,且现有建模方法常依赖简化布局或全合成数据,真实可靠的REM生成仍具挑战。新一代Wi-Fi标准工作于更高频段,存在覆盖范围小、穿墙能力弱等问题,进一步加剧了这一难题。为此,我们采集了一个数据集,包含20个不同布局下的多房间环境中的高分辨率3D LiDAR扫描与Wi-Fi RSSI测量数据。该数据集涵盖两种测量场景:无人员存在与有人员存在,支持融合物理几何结构与环境动态变化的REMs建模方法的研发与验证。本数据集有助于推动数据驱动的无线建模研究及高容量室内通信网络的发展。
原文摘要 · Abstract (English)
The growing number of smart devices supporting bandwidth-intensive and latency-sensitive applications, such as real-time video analytics, smart sensing, Extended Reality (XR), etc., necessitates reliable wireless connectivity in indoor environments. In such environments, accurate design of Radio Environment Maps (REMs) enables adaptive wireless network planning and optimization of Access Point (AP) placement. However, generating realistic REMs remains difficult due to the variability of indoor environments and the limitations of existing modeling approaches, which often rely on simplified layouts or fully synthetic data. These challenges are further amplified by the adoption of next-generation Wi-Fi standards, which operate at higher frequencies and suffer from limited range and wall penetration. To support the efforts in addressing these challenges, we collected a dataset that combines high-resolution 3D LiDAR scans with Wi-Fi RSSI measurements collected across 20 setups in a multi-room indoor environment. The dataset includes two measurement scenarios, the first without human presence in the environment, and the second with human presence, enabling the development and validation of REM estimation models that incorporate physical geometry and environmental dynamics. The described dataset supports research in data-driven wireless modeling and the development of high-capacity indoor communication networks.
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