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Relay with deflection routing for effective throughput improvement in Gbps millimeter-wave WPAN systems

机译:带有偏转路由的中继可有效提高Gbps毫米波WPAN系统的吞吐量

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In this paper, we propose a deflection routing scheme that improves effective throughput (defined as the successfully transmitted bits over the duration between two available sequential time slots) of millimeter-wave wireless personal area network (mmWave WPAN) systems. The upcoming mmWave WPAN is based on dynamic time division multiple access (TDMA) and designed to guarantee Gbps-order transmission capability for high definition TV (HDTV) transmission, high speed wireless docking and gaming, etc. The decode-and-forward (DF) type of relay offers a simple solution to the issues of mmWave WPAN systems, such as limited coverage range and unexpected blockage. However, due to the required extra time, DF relay on the other hand decreases the effective throughput, and may not be sufficient to satisfy the requirement of the above data-rategreedy applications. Inspired by the fact that the significant path loss of a millimeter-wave environment can provide good space isolation, we propose a deflection routing scheme to improve the effective throughput by sharing time slots for direct path with relay path. Based on the sub-exhaustive search, a routing algorithm, named as best fit deflection routing (BFDR), has been developed to find the relay path with the least interference that maximizes the system throughput. To reduce the computational complexity of the BFDR, we have also developed a sub-optimal algorithm named as random fit deflection routing (RFDR). The RFDR algorithm finds the sub-optimized relay path, where the interference may not be the least but is sufficiently low to guarantee the concurrent transmissions. Computer simulations show that, in realistic 60GHz environments, the effective system throughput can be improved up to 28% under grid topology and 35% under random topology. RFDR achieves almost the same order of throughput improvement with only 10% of the computational complexity of BFDR.
机译:在本文中,我们提出了一种偏转路由方案,该方案可提高毫米波无线个人局域网(mmWave WPAN)系统的有效吞吐量(定义为在两个可用顺序时隙之间的持续时间内成功发送的比特)。即将推出的mmWave WPAN基于动态时分多址(TDMA),旨在保证Gbps级传输能力,用于高清电视(HDTV)传输,高速无线对接和游戏等。解码转发(DF) )类型的继电器为mmWave WPAN系统的问题(例如覆盖范围有限和意外阻塞)提供了一种简单的解决方案。但是,由于需要额外的时间,DF中继会降低有效吞吐量,并且可能不足以满足上述数据率应用的要求。受到毫米波环境中大量路径损耗可以提供良好的空间隔离这一事实的启发,我们提出了一种偏转路由方案,通过与中继路径共享直接路径的时隙来提高有效吞吐量。基于子穷尽搜索,已开发出一种路由算法,称为最佳拟合偏转路由(BFDR),以找到干扰最小,使系统吞吐量最大化的中继路径。为了降低BFDR的计算复杂性,我们还开发了一种称为随机拟合偏转路由(RFDR)的次优算法。 RFDR算法找到次优化的中继路径,其中的干扰可能不是最小,但足够低,无法保证并发传输。计算机仿真表明,在实际的60GHz环境中,在网格拓扑结构下,有效系统吞吐量最多可以提高28%,在随机拓扑结构下,可以提高35%。 RFDR仅通过BFDR的计算复杂度的10%即可实现几乎相同的吞吐量提高。

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