Kui Liping, Huang Sai, Feng Zhiyong
School of Information and Communication Engineering, Beijing University of Posts and Telecommunications, Beijing 100876, China.
Sensors (Basel). 2021 Jun 8;21(12):3962. doi: 10.3390/s21123962.
Due to the increasing number of vehicles equipped with millimeter wave (mmWave) radars, interference among automotive radars is becoming a major issue. This paper explores the automotive radar interference in both two-lane and multi-lane scenarios using stochastic geometry. We derive closed-form expressions for mean and variance of interference power considering directional antenna with constant and Gaussian decaying gains. In view of the sensitivity of mmWave radar signals to the blockages, we propose a blockage model including partially and completely blocking, and then calculate the effective number of the interferers. By means of modeling randomness for interferers and blockages as Poisson point process, we characterize the statistics of radar interference under different conditions. We further utilize the interference characterization to estimate the successful ranging probability of automotive radars. These theoretical analyses are verified by using Monte Carlo simulations. The results show that the increasing interfering density and ranging distance largely degrade the radar detection performance, whereas the interference levels decrease as blockage intensity increases.
由于配备毫米波(mmWave)雷达的车辆数量不断增加,汽车雷达之间的干扰正成为一个主要问题。本文利用随机几何方法研究了双车道和多车道场景下的汽车雷达干扰。我们推导了考虑具有恒定增益和高斯衰减增益的定向天线的干扰功率均值和方差的闭式表达式。鉴于毫米波雷达信号对障碍物的敏感性,我们提出了一个包括部分和完全阻塞的阻塞模型,然后计算干扰源的有效数量。通过将干扰源和障碍物的随机性建模为泊松点过程,我们刻画了不同条件下雷达干扰的统计特性。我们进一步利用干扰特性来估计汽车雷达的成功测距概率。这些理论分析通过蒙特卡罗模拟得到验证。结果表明,干扰密度和测距距离的增加会大大降低雷达检测性能,而干扰水平会随着阻塞强度的增加而降低。