TY - GEN
T1 - Adaptive and predictive downlink resource management in next generation CDMA networks
AU - Wang, Xin
AU - Ramjee, Ramachandran
AU - Viswanathan, Harish
PY - 2004
Y1 - 2004
N2 - Guard channels have been proposed to minimize handoff call dropping when mobile hosts move from one cell to another. CDMA systems are power- and interference-limited. Therefore, guard capacity in CDMA networks is soft, that is, a given capacity corresponds to variable number of connections. Thus, it is essential to adjust the guard capacity in response to changes in traffic conditions and user mobility. We propose two schemes for managing downlink CDMA radio resources: Guard Capacity Adaptation Based on Dropping (GAD), and Guard Capacity Adaptation Based on Prediction and Dropping (GAPD). In both schemes, the guard capacity of a cell is dynamically adjusted so as to maintain the handoff dropping rate at a target level. In the second scheme, there is an additional, frequent adjustment component where guard capacity is adjusted based on soft handoff prediction. We show through extensive simulations that GAD and GAPD control the handoff dropping rate effectively under varying traffic conditions and system parameters. We also find that GAPD is more robust than GAD to temporal traffic variations and changes in control parameters.
AB - Guard channels have been proposed to minimize handoff call dropping when mobile hosts move from one cell to another. CDMA systems are power- and interference-limited. Therefore, guard capacity in CDMA networks is soft, that is, a given capacity corresponds to variable number of connections. Thus, it is essential to adjust the guard capacity in response to changes in traffic conditions and user mobility. We propose two schemes for managing downlink CDMA radio resources: Guard Capacity Adaptation Based on Dropping (GAD), and Guard Capacity Adaptation Based on Prediction and Dropping (GAPD). In both schemes, the guard capacity of a cell is dynamically adjusted so as to maintain the handoff dropping rate at a target level. In the second scheme, there is an additional, frequent adjustment component where guard capacity is adjusted based on soft handoff prediction. We show through extensive simulations that GAD and GAPD control the handoff dropping rate effectively under varying traffic conditions and system parameters. We also find that GAPD is more robust than GAD to temporal traffic variations and changes in control parameters.
UR - https://www.scopus.com/pages/publications/8344270948
U2 - 10.1109/INFCOM.2004.1354693
DO - 10.1109/INFCOM.2004.1354693
M3 - Conference contribution
AN - SCOPUS:8344270948
SN - 0780383559
T3 - Proceedings - IEEE INFOCOM
SP - 2754
EP - 2765
BT - IEEE INFOCOM 2004 - Conference on Computer Communications - Twenty-Third Annual Joint Conference of the IEEE Computer and Communications Societies
T2 - IEEE INFOCOM 2004 - Conference on Computer Communications - Twenty-Third Annual Joint Conference of the IEEE Computer and Communications Societies
Y2 - 7 March 2004 through 11 March 2004
ER -