Title :
Performance of a cellular network based on frequency hopping with dynamic channel allocation and power control
Author :
Verdone, Roberto ; Zanella, Alberto ; Zuliani, Luca
Author_Institution :
IEIIT-BO/CNR, Univ. of Bologna, Italy
Abstract :
A frequency- and time-division multiple-access (F-TDMA)-based mobile radio system using both dynamic channel allocation (DCA) and frequency hopping (FH) is investigated. We propose a new interference adaptive DCA (IA-DCA) algorithm that is suitably designed for a network implementing FH. The role played by the power control algorithm in this DCA-FH context is also investigated. We compare the performance of our proposal to that of fixed channel allocation (FCA) with and without FH and the well-known IA-DCA schemes investigated in the literature in the absence of FH. The performance results show that interesting synergic effects can be obtained in terms of forced termination and user satisfaction probability by using both DCA and FH. The results we show in the paper have been achieved by means of a system-level simulation tool which takes propagation, user mobility, interference, traffic, and channel allocation into account. The advantages of using FH are accounted for by using a suitable analytical model that gives the frame error rate as a function of the carrier-to-interference ratio and the number of hopping frequencies, at link level; this model is taken from the literature where it was presented for FCA, and here it is modified in order to be applicable to the DCA case.
Keywords :
cellular radio; channel allocation; error statistics; frequency division multiple access; frequency hop communication; power control; probability; radio links; radiofrequency interference; telecommunication control; telecommunication traffic; time division multiple access; carrier-to-interference ratio; cellular network; dynamic channel allocation; fixed channel allocation; frame error rate; frequency hopping; frequency-division multiple access; interference adaptive DCA algorithm; mobile radio system; power control algorithm; system-level simulation tool; time-division multiple access; user mobility; user satisfaction probability; Adaptive control; Algorithm design and analysis; Channel allocation; Interference; Land mobile radio; Land mobile radio cellular systems; Power control; Programmable control; Proposals; Radio spectrum management;
Journal_Title :
Wireless Communications, IEEE Transactions on
DOI :
10.1109/TWC.2004.840215