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A Comprehensive Propagation Prediction Model Comprising Microfacet Based Scattering and Probability Based Coverage Optimization Algorithm

机译:一种综合传播预测模型,包括基于微涂层的散射和基于概率的覆盖优化算法

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Although ray tracing based propagation prediction models are popular for indoor radio wave propagation characterization, most of them do not provide an integrated approach for achieving the goal of optimum coverage, which is a key part in designing wireless network. In this paper, an accelerated technique of three-dimensional ray tracing is presented, where rough surface scattering is included for making a more accurate ray tracing technique. Here, the rough surface scattering is represented by microfacets, for which it becomes possible to compute the scattering field in all possible directions. New optimization techniques, like dual quadrant skipping (DQS) and closest object finder (COF), are implemented for fast characterization of wireless communications and making the ray tracing technique more efficient. In conjunction with the ray tracing technique, probability based coverage optimization algorithm is accumulated with the ray tracing technique to make a compact solution for indoor propagation prediction. The proposed technique decreases the ray tracing time by omitting the unnecessary objects for ray tracing using the DQS technique and by decreasing the ray-object intersection time using the COF technique. On the other hand, the coverage optimization algorithm is based on probability theory, which finds out the minimum number of transmitters and their corresponding positions in order to achieve optimal indoor wireless coverage. Both of the space and time complexities of the proposed algorithm surpass the existing algorithms. For the verification of the proposed ray tracing technique and coverage algorithm, detailed simulation results for different scattering factors, different antenna types, and different operating frequencies are presented. Furthermore, the proposed technique is verified by the experimental results.
机译:尽管基于射线跟踪的传播预测模型对于室内无线电波传播表征是流行的,但大多数都不提供实现最佳覆盖目标的集成方法,这是设计无线网络的关键部分。在本文中,提出了一种加速技术,其中包括三维射线跟踪的加速技术,其中包括粗糙表面散射以进行更精确的射线跟踪技术。这里,粗糙表面散射由微法表示,其中可以在所有可能的方向上计算散射场。新的优化技术,如双象限跳过(DQS)和最近的对象查找器(COF),用于快速表征无线通信,使光线跟踪技术更有效。结合光线跟踪技术,基于概率的覆盖优化算法利用光线跟踪技术累积,以制造用于室内传播预测的紧凑解决方案。所提出的技术通过使用DQS技术省略用于光线跟踪的不必要的对象来降低光线跟踪时间,并通过使用COF技术降低光线对象交叉点。另一方面,覆盖优化算法基于概率理论,其发现发射器的最小数量及其对应位置,以实现最佳的室内无线覆盖。所提出的算法的空间和时间复杂性都超越了现有的算法。为了验证所提出的射线跟踪技术和覆盖算法,提出了不同散射因子,不同天线类型和不同的操作频率的详细仿真结果。此外,所提出的技术通过实验结果验证。

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