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

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-rate-greedy 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 60 GHz 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.

[1]  Bin Wang,et al.  Optimum Power Distribution for Uplink Channel in a Cooperative Wireless CDMA Network , 2008, 2008 IEEE International Conference on Communications.

[2]  Yong-Kweon Kim,et al.  V-band reflection-type phase shifters using micromachined CPW coupler and RF switches , 2002 .

[3]  Ramin Hekmat,et al.  Directional MAC Protocol for Millimeter Wave based Wireless Personal Area Networks , 2008, VTC Spring 2008 - IEEE Vehicular Technology Conference.

[4]  Lin Xie,et al.  TDMA and FDMA Based Resource Allocations for Quality of Service Provisioning Over Wireless Relay Networks , 2007, 2007 IEEE Wireless Communications and Networking Conference.

[5]  Bijan Jabbari,et al.  Performance analysis of multihop packet CDMA cellular networks , 2001, GLOBECOM'01. IEEE Global Telecommunications Conference (Cat. No.01CH37270).

[6]  Aifeng Ren,et al.  Directional virtual carrier sensing for directional antennas in mobile ad hoc networks , 2002, MobiHoc '02.

[7]  Ming Lei,et al.  MMSE-FDE Based on Estimated SNR for Single-Carrier Block Transmission (SCBT) in Multi-Gbps WPAN (IEEE 802.15.3c) , 2008, ICC Workshops - 2008 IEEE International Conference on Communications Workshops.

[8]  Nasreen Badruddin,et al.  Capacity improvement in a CDMA system using relaying , 2004, 2004 IEEE Wireless Communications and Networking Conference (IEEE Cat. No.04TH8733).

[9]  Steve McLaughlin,et al.  Capacity and power investigation of opportunity driven multiple access (ODMA) networks in TDD-CDMA based systems , 2002, 2002 IEEE International Conference on Communications. Conference Proceedings. ICC 2002 (Cat. No.02CH37333).

[10]  Adam Wolisz,et al.  EvalVid - A Framework for Video Transmission and Quality Evaluation , 2003, Computer Performance Evaluation / TOOLS.

[11]  A. Yener,et al.  Optimal power allocation for relay assisted F/TDMA ad hoc networks , 2005, 2005 International Conference on Wireless Networks, Communications and Mobile Computing.

[12]  H. Vincent Poor,et al.  Recovering Multiplexing Loss through Successive Relaying Using Repetition Coding , 2007, IEEE Transactions on Wireless Communications.

[13]  S. Yong,et al.  TG3c channel modeling sub-committee final report , 2007 .

[14]  A.A.M. Saleh,et al.  A Statistical Model for Indoor Multipath Propagation , 1987, IEEE J. Sel. Areas Commun..

[15]  Hiroshi Harada,et al.  On-demand device discovery enhancement of IEEE802.15.3 MAC for 60GHz WPAN system , 2008, 2008 IEEE 19th International Symposium on Personal, Indoor and Mobile Radio Communications.