计算机科学 ›› 2026, Vol. 53 ›› Issue (6A): 250400020-6.doi: 10.11896/jsjkx.250400020
彭琳钰1, 王涛1, 龙姣1, 曹中烨2, 吴以杰2, 王巍2
PENG Linyu1, WANG Tao1, LONG Jiao1, CAO Zhongye2, WU Yijie2, WANG Wei2
摘要: 分布式光伏系统因其部署灵活、分布范围广阔等特点,顺应了电力系统智能化与可再生能源高效利用的发展趋势。然而,管理该系统不仅需要实时获取光伏组件的运行状态、环境参数等传感数据,还需准确定位数据采集终端以支持故障排查、资源优化和效率提升,这对终端的能耗、大规模接入通信能力以及感知定位能力提出了严苛要求。现有技术难以同时满足低功耗通信、大规模终端接入与高精度定位的协同需求,导致分布式光伏系统在实际应用中面临显著挑战。为满足该需求,提出了一种基于功率控制非正交多址接入的低功耗反向散射通信感知系统。该系统在实现过程中面临以下难点:首先,现有反向散射通信技术在功率调控精度上存在不足,难以适应分布式光伏场景中动态变化的功率分配需求;其次,空间分布差异导致功率调控有效性下降,影响系统整体性能;最后,多标签定位过程中并发信号干扰严重,制约了定位精度。针对这些难点,基于隧道二极管设计反射功率控制方案,实现了信号功率的精细调节;提出了动态功率调控策略,优化了系统整体误码率;结合混叠信号中蕴含的到达角信息与非正交多址接入的功率域特性设计多标签定位方案,实现了多标签通信与位置估计。实验结果表明,系统误码率在信噪比大于15 dB时低于0.01%,定位角度误差在信噪比大于5 dB时低于5°。
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