Title :
Performance of a hybrid multilevel error control with an early-stop ARQ protocol for wireless ATM networks
Author :
Ding, Quan-Long ; He, Lin
Author_Institution :
REnex Technol. Ltd., Hong Kong, China
fDate :
3/1/2003 12:00:00 AM
Abstract :
This paper proposes an effective hybrid multilevel error control (HMEC) with an early-stop automatic repeat request (ARQ) scheme for wireless asynchronous transfer mode (ATM) networks. In this scheme, the source traffic is segmented into a number of blocks, each with m cells, then encoded into k(k>m) cells. The transmission of one block may be finished as long as m out of the k cells are received correctly. The ARQ protocol is applied only when too many cells are dropped or corrupted due to uncorrectable error in the radio channel. This paper also provides a detail study of the proposed scheme. In particular, the throughput efficiency with parameters (m,k) are derived analytically for the white Gaussian and Rayleigh fading channels. Simulation results show a very close match with theoretical results. All the results show that the HMEC scheme can reduce cell-retransmission probability and improve network throughput over a wide range of channel error rates when appropriate values of parameters m and k are chosen.
Keywords :
AWGN channels; Rayleigh channels; asynchronous transfer mode; automatic repeat request; decoding; error correction codes; packet radio networks; probability; protocols; AWGN channels; Rayleigh fading channels; additive white Gaussian noise channels; cell-retransmission probability reduction; channel error rates; decoding failure probability; early-stop ARQ protocol; early-stop automatic repeat request; error-control coding; hybrid multilevel error control performance; network throughput; radio channel; simulation results; source traffic; throughput efficiency; uncorrectable error; wireless ATM networks; wireless asynchronous transfer mode networks; Asynchronous transfer mode; Automatic repeat request; Bandwidth; Error analysis; Error correction; Fading; Forward error correction; Helium; Throughput; Wireless application protocol;
Journal_Title :
Communications, IEEE Transactions on
DOI :
10.1109/TCOMM.2003.809780