TY - JOUR
T1 - Interference range-reduced cooperative multiple access with optimal relay selection for large scale wireless networks
AU - Liu, Kai
AU - Wang, Rui
AU - Yue, Caizhao
AU - Liu, Feng
AU - Lu, Tao
AU - Xiong, Zixiang
N1 - Publisher Copyright:
© 2019 by the authors. Licensee MDPI, Basel, Switzerland.
PY - 2019/6/1
Y1 - 2019/6/1
N2 - Cooperative communication improves the link throughput of wireless networks through spatial diversity. However, it reduces the frequency reuse of the entire network due to the enlarged link interference range introduced by each helper. In this paper, we propose a cooperative medium access control (MAC) protocol with optimal relay selection (ORS-CMAC) for multihop, multirate large scale networks, which can reduce the interference range and improve the network throughput. Then, we investigate the performance gain achieved by these two competitive factors, i.e., the spatial frequency reuse gain and spatial diversity gain, in large scale wireless networks. The expressions of maximum network throughput for direct transmissions and cooperative transmissions in the whole network are derived as a function of the number of concurrent transmission links, data packet length, and average packet transmission time. Simulation results validate the effectiveness of the theoretical results. The theoretical and simulation results show that the helper can reduce the spatial frequency reuse slightly, and spatial diversity gain can compensate for the decrease of the spatial frequency reuse, thereby improving the network throughput from the viewpoint of the whole network.
AB - Cooperative communication improves the link throughput of wireless networks through spatial diversity. However, it reduces the frequency reuse of the entire network due to the enlarged link interference range introduced by each helper. In this paper, we propose a cooperative medium access control (MAC) protocol with optimal relay selection (ORS-CMAC) for multihop, multirate large scale networks, which can reduce the interference range and improve the network throughput. Then, we investigate the performance gain achieved by these two competitive factors, i.e., the spatial frequency reuse gain and spatial diversity gain, in large scale wireless networks. The expressions of maximum network throughput for direct transmissions and cooperative transmissions in the whole network are derived as a function of the number of concurrent transmission links, data packet length, and average packet transmission time. Simulation results validate the effectiveness of the theoretical results. The theoretical and simulation results show that the helper can reduce the spatial frequency reuse slightly, and spatial diversity gain can compensate for the decrease of the spatial frequency reuse, thereby improving the network throughput from the viewpoint of the whole network.
KW - Cooperative MAC protocol
KW - Helper selection
KW - Large scale wireless networks
KW - Medium access control (MAC)
KW - Spatial diversity gain
KW - Spatial frequency reuse gain
UR - https://www.scopus.com/pages/publications/85068186672
U2 - 10.3390/s19112565
DO - 10.3390/s19112565
M3 - 文章
C2 - 31195685
AN - SCOPUS:85068186672
SN - 1424-8220
VL - 19
JO - Sensors
JF - Sensors
IS - 11
M1 - 2565
ER -