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Thomas Kessler

dblp:57/3974 · DBLP profile ↗
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3ranked-venue papers
0as first author
0since 2021 · last 2002
—ORCID · none

Domains — the database's venue-derived domains; a paper can count in several

Computer networks · 3

Expertise — from the expertise taxonomy: the topics of the expert's papers under the CCF categories. A weight counts papers with recency: 1 for a paper about the topic, 0.3 when the topic is its context, halved every five years.

Computer networks
3 papers
Physical-layer communications · 100%
Theoretical computer science
1 paper
Coding theory · 100%

Topics — the 11 heaviest of 11, each with the papers that count most for it

TopicWeightPapersLastEvidence papers
Physical-layer communications › channel modeling
impulsive noise
0.022002
Impulse generation with appropriate amplitude, length, inter-arrival, and spectral characteristics · IEEE J. Sel. Areas Commun. 2002
Coded 64-CAP ADSL in an Impulse-Noise Enviornment - Modeling of Impulse Noise and First Simulation Results · IEEE J. Sel. Areas Commun. 1995
Physical-layer communications › digital subscriber line
discrete multitone
0.012000
Maximizing the channel capacity of multicarrier transmission by suitable adaptation of the time-domain equalizer · IEEE Trans. Commun. 2000
Physical-layer communications
modulation
0.012000
Maximizing the channel capacity of multicarrier transmission by suitable adaptation of the time-domain equalizer · IEEE Trans. Commun. 2000
Physical-layer communications › modulation
multicarrier transmission
0.012000
Maximizing the channel capacity of multicarrier transmission by suitable adaptation of the time-domain equalizer · IEEE Trans. Commun. 2000
Physical-layer communications
signal processing for communications
0.012000
Maximizing the channel capacity of multicarrier transmission by suitable adaptation of the time-domain equalizer · IEEE Trans. Commun. 2000
Physical-layer communications › equalization
time-domain equalizer
0.012000
Maximizing the channel capacity of multicarrier transmission by suitable adaptation of the time-domain equalizer · IEEE Trans. Commun. 2000
Physical-layer communications
digital subscriber line
0.022002
Coded 64-CAP ADSL in an Impulse-Noise Enviornment - Modeling of Impulse Noise and First Simulation Results · IEEE J. Sel. Areas Commun. 1995
Impulse generation with appropriate amplitude, length, inter-arrival, and spectral characteristics · IEEE J. Sel. Areas Commun. 2002
Physical-layer communications › coding theory
coding schemes
0.011995
Coded 64-CAP ADSL in an Impulse-Noise Enviornment - Modeling of Impulse Noise and First Simulation Results · IEEE J. Sel. Areas Commun. 1995
Coding theory › error-correcting codes
concatenated codes
0.011995
Coded 64-CAP ADSL in an Impulse-Noise Enviornment - Modeling of Impulse Noise and First Simulation Results · IEEE J. Sel. Areas Commun. 1995
Coding theory › error-correcting codes › burst error correction
interleaving
0.011995
Coded 64-CAP ADSL in an Impulse-Noise Enviornment - Modeling of Impulse Noise and First Simulation Results · IEEE J. Sel. Areas Commun. 1995
Physical-layer communications › digital subscriber line
ADSL
0.011995
Coded 64-CAP ADSL in an Impulse-Noise Enviornment - Modeling of Impulse Noise and First Simulation Results · IEEE J. Sel. Areas Commun. 1995

Methods — techniques the papers use, named apart from their topics

statistical modeling · 0.1computer simulation · 0.0channel capacity maximization · 0.0adaptation algorithm · 0.0
YearPublicationVenuePosition
2002 Impulse generation with appropriate amplitude, length, inter-arrival, and spectral characteristics
abstract
This paper proposes a suitable method for simulating impulses with appropriate amplitude, spectral, and inter-arrival characteristics. The statistics used to develop the parameters of this model are based on statistics derived from observations of impulse noise on the telephone networks of British Telecom (BT) and Deutsche Telekom (DT). This paper initially reviews the former DT approach to impulse noise generation for testing digital subscriber line systems, so called xDSL systems. Some problems are highlighted and an alternative technique is suggested that is capable of generating impulses with both appropriate amplitude an spectral characteristics.
Iain Mann, Steve McLaughlin 0001, Werner Henkel, Rob Kirkby, Thomas Kessler
IEEE J. Sel. Areas Commun.5
2000 Maximizing the channel capacity of multicarrier transmission by suitable adaptation of the time-domain equalizer
abstract
An adaptation algorithm for determining the time-domain equalizer coefficients is described that maximizes the total channel capacity for all carriers of a multitone (discrete multitone) transmission. It takes into account the crosstalk noise environment and the interblock interference as a common disturbance. Furthermore, the leakage effect of the discrete Fourier transform (fast Fourier transform) is considered, too. Including this into the algorithm for the equalizer coefficients leads to a notable improvement in the signal-to-noise ratio, especially at lower frequencies for a typical asymmetrical digital subscriber line application.
Werner Henkel, Thomas Kessler
IEEE Trans. Commun.2
1995 Coded 64-CAP ADSL in an Impulse-Noise Enviornment - Modeling of Impulse Noise and First Simulation Results
abstract
This paper presents the performance of various coding schemes for the asymmetrical digital subscriber line (ADSL) in an impulse-noise environment. Impulse noise is considered to be one of the most damaging impairments in the ADSL, in which compressed video signals are delivered to residential customers. The impulse noise used in this study was measured and collected in German telephone networks. Based on this measurement and the corresponding statistical modeling, a simulation model for impulse noise is proposed and its properties are outlined. The coding schemes considered here utilize burst-error correcting Reed-Solomon codes and/or random error correcting trellis codes as well as symbol interleaving between the two codes. It has been found through computer simulations that a proper concatenation of the two codes could increase the immunity against impulse noise compared to an uncoded scheme. Specifically, a concatenated code, using a 2-dimensional 8-state trellis code and a 4-error-correcting Reed-Solomon code with an interleaving depth of 18 symbols, was able to eliminate all the errors caused by the impulse noise used in the study. It has also been found that the trellis codes are not very effective against impulse noise, unless they are used in conjunction with Reed-Solomon codes and a proper symbol interleaving. Performance results of other coding configurations using Reed-Solomon codes with different error-correcting capabilities are also presented. In addition, we also show the performance results when simple array codes are used instead of the Reed-Solomon codes
Werner Henkel, Thomas Kessler, Hong Y. Chung
IEEE J. Sel. Areas Commun.2