Title :
Jointly Optimal Source-Flow, Transmit-Power, and Sending-Rate Control for Maximum-Throughput Delivery of VBR Traffic over Faded Links
Author :
Baccarelli, Enzo ; Cordeschi, Nicola ; Patriarca, Tatiana
Author_Institution :
DIET Dept., Sapienza Univ. of Rome, Rome, Italy
fDate :
3/1/2012 12:00:00 AM
Abstract :
Emerging media overlay networks for wireless applications aim at delivering Variable Bit Rate (VBR) encoded media contents to nomadic end users by exploiting the (fading-impaired and time-varying) access capacity offered by the "last-hop” wireless channel. In this application scenario, a still open question concerns the closed-form design of control policies that maximize the average throughput sent over the wireless last hop, under constraints on the maximum connection bandwidth available at the Application (APP) layer, the queue capacity available at the Data Link (DL) layer, and the average and peak energies sustained by the Physical (PHY) layer. The approach we follow relies on the maximization on a per-slot basis of the throughput averaged over the fading statistic and conditioned on the queue state, without resorting to cumbersome iterative algorithms. The resulting optimal controller operates in a cross-layer fashion that involves the APP, DL, and PHY layers of the underlying protocol stack. Finally, we develop the operating conditions allowing the proposed controller also to maximize the unconditional average throughput (i.e., the throughput averaged over both queue and channel-state statistics). The carried out numerical tests give insight into the connection bandwidth-versus-queue delay trade-off achieved by the optimal controller.
Keywords :
control system synthesis; iterative methods; optimal control; power control; protocols; queueing theory; radio links; telecommunication congestion control; telecommunication traffic; wireless channels; APP layer; DL layer; PHY layer; VBR traffic; application layer; closed-form design; connection bandwidth-versus-queue delay trade-off; cross-layer fashion; cumbersome iterative algorithms; data link layer; faded links; fading statistic; jointly optimal source-flow control; last-hop wireless channel; maximum-throughput delivery; media overlay networks; physical layer; protocol stack; queue capacity; sending-rate control; transmit-power control; variable bit rate encoded media contents; wireless applications; Bandwidth; Energy efficiency; Fading channels; Multimedia communication; Optimization; Throughput; Wireless communication; Multimedia wireless connections; cross-layer management; flow control.; throughput energy saving;
Journal_Title :
Mobile Computing, IEEE Transactions on
DOI :
10.1109/TMC.2011.68