2002Unpublished venueRequires access

Radio topology design with slow frequency hopping for interference limited digital cellular systems

R. Wyrwas, J.C. Campbell

Open publisher page 4 citations

Abstract

A simulation approach is adopted to evaluate the performance of cellular systems with slow frequency hopping. The simulation incorporates a model for the fading channel which includes path loss, shadow, and fast fading as well as models for power control and discontinuous transmission. Hopping sequences as defined for the GSM (Group Special Mobile) system are used. Results for both the hopped and nonhopped cases are presented in terms of frame erasure rates, outage probabilities, and distributions of mean wanted to mean interference ratios. In particular, 9- and 12-cell reuse clusters with and without hopping are compared. The results obtained confirm that a reduction in outage probability and a resultant increase in capacity can be obtained with slow frequency hopping. It is shown that, as the number of hopped frequencies increases to about five, the benefit of hopping steadily increases. Hopping over more than five frequencies provides only negligible additional gain.>

About this research paper

What this paper is about

A simulation approach is adopted to evaluate the performance of cellular systems with slow frequency hopping. The simulation incorporates a model for the fading channel which includes path loss, shadow, and fast fading as well as models for power control and discontinuous transmission. Hopping sequences as defined for the GSM (Group Special Mobile) system are used. Results for both the hopped and nonhopped cases are presented in terms of frame erasure rates, outage probabilities, and distributions of mean wanted to mean interference ratios. In particular, 9- and 12-cell reuse clusters with and without hopping are compared. The results obtained confirm that a reduction in outage probability and a resultant increase in capacity can be obtained with slow frequency hopping. It is shown that, as the number of hopped frequencies increases to about five, the benefit of hopping steadily increases. Hopping over more than five frequencies provides only negligible additional gain.>

Why it matters

OpenAlex reports 4 citations for this work. Citation counts describe recorded attention and do not establish research quality.

Key contribution

A contribution statement is not available in the OpenAlex record.

Method / approach

Method details are not available in the OpenAlex metadata.

Main findings

Findings are not separately available in the OpenAlex metadata.

Limitations

Limitations are not available in the OpenAlex metadata.

Applications

Application details are not available in the OpenAlex metadata.

Available abstract

A simulation approach is adopted to evaluate the performance of cellular systems with slow frequency hopping. The simulation incorporates a model for the fading channel which includes path loss, shadow, and fast fading as well as models for power control and discontinuous transmission. Hopping sequences as defined for the GSM (Group Special Mobile) system are used. Results for both the hopped and nonhopped cases are presented in terms of frame erasure rates, outage probabilities, and distributions of mean wanted to mean interference ratios. In particular, 9- and 12-cell reuse clusters with and without hopping are compared. The results obtained confirm that a reduction in outage probability and a resultant increase in capacity can be obtained with slow frequency hopping. It is shown that, as the number of hopped frequencies increases to about five, the benefit of hopping steadily increases. Hopping over more than five frequencies provides only negligible additional gain.>

Key concepts: Frequency-hopping spread spectrum, Erasure, Fading, Topology (electrical circuits), Computer science, Path loss, Interference (communication), Time-hopping

Related papers

Back to paper searchBrowse research topicsOriginal source
Radio topology design with slow frequency hopping for interference limited digital cellular systems — Research Paper | ScholarLens