2008Unpublished venueOpen access

Coherence Bandwidth and its Relationship with the RMS delay spread for PLC channels using Measurements up to 100 MHz

Mohamed Tlich, Gautier Avril, A. Zeddam

Open full text 13 citations

Abstract

Estimations of coherence bandwidth from wideband channel sounding measurements made in the 30KHz–100MHz band in several indoor environments are described. Results are intended for applications in high-capacity indoor powerline networks. The coherence bandwidth and the RMS delay spread parameters are estimated from measurements of the complex transfer function of the Powerline Communications (PLC) channel. The 90th percentile of the estimated coherence bandwidth at 0.9 correlation level is above 65.5 KHz and 90% of estimated values of B 0.9 are below 691.5 KHz. B 0.9 was observed to have a minimum value of 32.5 KHz. The RMS delay spread describes the dispersion in the time domain due to multipath transmission. 80 % of the channels exhibit an RMS delay spread between O.O6µs and 0.78µs. Its mean value was equal to 0.413µs. The paper studies the variability of the coherence bandwidth and time-delay spread parameters with the channel class [9], and thus with the location of the receiver with respect to the transmitter. And finally relates the RMS delay spread to the coherence bandwidth, which in turn, affects the powerline channel capacity.

Open-access reader

About this research paper

What this paper is about

Estimations of coherence bandwidth from wideband channel sounding measurements made in the 30KHz–100MHz band in several indoor environments are described. Results are intended for applications in high-capacity indoor powerline networks. The coherence bandwidth and the RMS delay spread parameters are estimated from measurements of the complex transfer function of the Powerline Communications (PLC) channel. The 90th percentile of the estimated coherence bandwidth at 0.9 correlation level is above 65.5 KHz and 90% of estimated values of B 0.9 are below 691.5 KHz. B 0.9 was observed to have a minimum value of 32.5 KHz. The RMS delay spread describes the dispersion in the time domain due to multipath transmission. 80 % of the channels exhibit an RMS delay spread between O.O6µs and 0.78µs. Its mean value was equal to 0.413µs. The paper studies the variability of the coherence bandwidth and time-delay spread parameters with the channel class [9], and thus with the location of the receiver with respect to the transmitter. And finally relates the RMS delay spread to the coherence bandwidth, which in turn, affects the powerline channel capacity.

Why it matters

OpenAlex reports 13 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

Estimations of coherence bandwidth from wideband channel sounding measurements made in the 30KHz–100MHz band in several indoor environments are described. Results are intended for applications in high-capacity indoor powerline networks. The coherence bandwidth and the RMS delay spread parameters are estimated from measurements of the complex transfer function of the Powerline Communications (PLC) channel. The 90th percentile of the estimated coherence bandwidth at 0.9 correlation level is above 65.5 KHz and 90% of estimated values of B 0.9 are below 691.5 KHz. B 0.9 was observed to have a minimum value of 32.5 KHz. The RMS delay spread describes the dispersion in the time domain due to multipath transmission. 80 % of the channels exhibit an RMS delay spread between O.O6µs and 0.78µs. Its mean value was equal to 0.413µs. The paper studies the variability of the coherence bandwidth and time-delay spread parameters with the channel class [9], and thus with the location of the receiver with respect to the transmitter. And finally relates the RMS delay spread to the coherence bandwidth, which in turn, affects the powerline channel capacity.

Key concepts: Coherence bandwidth, Delay spread, Bandwidth (computing), Coherence (philosophical gambling strategy), Transmitter, Multipath propagation, Wideband, Channel capacity

Related papers

Back to paper searchBrowse research topicsOriginal source
Coherence Bandwidth and its Relationship with the RMS delay spread for PLC channels using Measurements up to 100 MHz — Research Paper | ScholarLens