Title :
ROME: Rateless Online MDS Code for Wireless Data Broadcasting
Author :
He, Nengqiang ; Xu, Yi ; Cao, Jiannong ; Li, Zhu ; Chen, Hongyang ; Ren, Yong
Author_Institution :
Dept. of Electron. Eng., Tsinghua Univ., Beijing, China
Abstract :
Packet level coding schemes are used to improve the transmission reliability and efficiency in data broadcasting applications, especially for wireless networks. However, existing coding schemes have large redundancy for packets are coded by a random way or some certain probability distributions. Although the Maximum Distance Separable (MDS) codes are designed without redundancy, they are not effective when the packet erasure probability is high. To reduce the coding redundancy, lots of work use the receiver side information to adjust the codes construction on-the-fly, which is more beneficial. However, these work have disadvantages:1) the coding redundancy is also large; 2) the feedback schemes have great affect on performance. In this paper, we design a robust feedback scheme and a novel "Rateless Online MDS Code"(ROME) to eliminate the coding redundancy. Our contributions include that our codes are throughput optimal codes without redundancy, and the analysis on theoretical finite field size bound to achieve throughput optimal codes. We also design the finite field construction to speed up the encoding and decoding process. Finally, we compare the performance between ROME and other existing codes, like RLC, LT, RT oblivious and SLT codes, and their performance when feedbacks are erased.
Keywords :
decoding; encoding; feedback; probability; radio broadcasting; radio networks; redundancy; telecommunication network reliability; RLC codes; ROME; RT codes; SLT codes; certain probability distributions; codes construction; coding redundancy; decoding process; encoding process; feedback schemes; finite field construction; maximum distance separable codes; packet erasure probability; packet level coding schemes; rateless online MDS Code; rateless online MDS code; receiver side information; robust feedback scheme; theoretical finite field size; throughput optimal codes; transmission efficiency; transmission reliability; wireless data broadcasting; wireless networks; Broadcasting; Encoding; Network coding; Receivers; Redundancy; Robustness; Throughput;
Conference_Titel :
Global Telecommunications Conference (GLOBECOM 2010), 2010 IEEE
Conference_Location :
Miami, FL
Print_ISBN :
978-1-4244-5636-9
Electronic_ISBN :
1930-529X
DOI :
10.1109/GLOCOM.2010.5683211