Research on OTA Testing Optimization of 5G IoT Devices

Xiaochen Chen, Xianhui Liu, Siyang Sun
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Abstract

Over-the-air (OTA) testing for wireless devices is crucial to guarantee actual network performance. Current OTA testing requires respectively 266 and 62 grid points for Total Radiated Power (TRP) and Total Isotropic Sensitivity (TIS) measurement. For 5G Internet of Things (IoT) devices, especially for low transmit duty-cycle devices, this number of grid points could lead to an unacceptably large amount of test time. Therefore, test time reduction is significant. The objective of this paper is to determine a suitable measurement grid for OTA testing of 5G IoT devices which balances measurement grid uncertainty/errors with test time. Two reference patterns representing a reasonable worst-case scenario of IoT devices are proposed for measurement uncertainty (MU) analysis of different grid configurations. The effects of different grid configurations on OTA testing accuracy are evaluated. The determination of associated MU term is proposed and determined based on statistical analysis. Finally, the reduction of grid points from currently required 62 (30/30 in theta/phi) to 32 (45/36) could save roughly 50% test time while requiring an uncertainty increase of less than 0.2 dB, which is acceptable for OTA testing of 5G IoT devices.
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5G物联网设备OTA测试优化研究
无线设备的空中(OTA)测试对于保证实际网络性能至关重要。目前OTA测试分别需要266和62栅格点进行总辐射功率(TRP)和总各向同性灵敏度(TIS)测量。对于5G物联网(IoT)设备,特别是对于低传输占空比设备,如此多的网格点可能导致不可接受的大量测试时间。因此,测试时间的减少是显著的。本文的目标是确定适合5G物联网设备OTA测试的测量网格,以平衡测量网格的不确定性/误差与测试时间。提出了两种代表物联网设备合理最坏情况的参考模式,用于不同网格配置的测量不确定度(MU)分析。评估了不同网格配置对OTA测试精度的影响。提出了关联MU项的确定方法,并在统计分析的基础上进行了确定。最后,将网格点从目前所需的62个(θ /phi中的30/30)减少到32个(45/36),可以节省大约50%的测试时间,同时要求不确定性增加小于0.2 dB,这对于5G物联网设备的OTA测试是可以接受的。
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