Christopher M. Kellett

dblp:91/7138 · DBLP profile ↗
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10ranked-venue papers
1as first author
0since 2021 · last 2014
0000-0002-8309-6807ORCID · verified

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

Applied, interdisciplinary, general and emerging computing · 5 · 1 first-authorComputer networks · 3Theory of computation · 2

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.

Theoretical computer science
4 papers
Information theory · 81% Coding theory · 19%
Computer networks
1 paper
Physical-layer communications · 70% Internet of things and sensor networks · 30%

Topics — the 14 heaviest of 15, each with the papers that count most for it

TopicWeightPapersLastEvidence papers
Information theory › network information theory
relay channel
0.432012
On the Equal-Rate Capacity of the AWGN Multiway Relay Channel · IEEE Trans. Inf. Theory 2012
The Half-Duplex AWGN Single-Relay Channel: Full Decoding or Partial Decoding? · IEEE Trans. Commun. 2012
The Capacity Region of Multiway Relay Channels Over Finite Fields With Full Data Exchange · IEEE Trans. Inf. Theory 2011
Information theory › network information theory › relay channel
multiway relay channel
0.322012
On the Equal-Rate Capacity of the AWGN Multiway Relay Channel · IEEE Trans. Inf. Theory 2012
The Capacity Region of Multiway Relay Channels Over Finite Fields With Full Data Exchange · IEEE Trans. Inf. Theory 2011
Information theory
network information theory
0.322012
On the Equal-Rate Capacity of the AWGN Multiway Relay Channel · IEEE Trans. Inf. Theory 2012
The Capacity Region of Multiway Relay Channels Over Finite Fields With Full Data Exchange · IEEE Trans. Inf. Theory 2011
Internet of things and sensor networks
correlated sources
0.212013
The Three-User Finite-Field Multi-Way Relay Channel with Correlated Sources · IEEE Trans. Commun. 2013
Physical-layer communications › coding theory
joint source-channel coding
0.212013
The Three-User Finite-Field Multi-Way Relay Channel with Correlated Sources · IEEE Trans. Commun. 2013
Physical-layer communications › cooperative communication › relay networks
multi-way relay network
0.212013
The Three-User Finite-Field Multi-Way Relay Channel with Correlated Sources · IEEE Trans. Commun. 2013
Coding theory
joint source-channel coding
0.212013
The Three-User Finite-Field Multi-Way Relay Channel with Correlated Sources · IEEE Trans. Commun. 2013
Coding theory › source coding › multiterminal source coding › distributed source coding
slepian-wolf coding
0.212013
The Three-User Finite-Field Multi-Way Relay Channel with Correlated Sources · IEEE Trans. Commun. 2013
Information theory › network information theory › relay channel
decode-and-forward
0.112012
The Half-Duplex AWGN Single-Relay Channel: Full Decoding or Partial Decoding? · IEEE Trans. Commun. 2012
Information theory › channel capacity
gaussian channel
0.112012
On the Equal-Rate Capacity of the AWGN Multiway Relay Channel · IEEE Trans. Inf. Theory 2012
Information theory › channel capacity
capacity region
0.112011
The Capacity Region of Multiway Relay Channels Over Finite Fields With Full Data Exchange · IEEE Trans. Inf. Theory 2011
Physical-layer communications › relaying
relay channel
0.012013
The Three-User Finite-Field Multi-Way Relay Channel with Correlated Sources · IEEE Trans. Commun. 2013
Information theory › channel capacity › capacity region
achievable rate region
0.012012
On the Equal-Rate Capacity of the AWGN Multiway Relay Channel · IEEE Trans. Inf. Theory 2012
Coding theory
channel coding
0.012011
The Capacity Region of Multiway Relay Channels Over Finite Fields With Full Data Exchange · IEEE Trans. Inf. Theory 2011

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

functional-decode-forward · 0.6slepian-wolf source coding · 0.3rate analysis · 0.1compress-forward · 0.1complete-decode-forward · 0.1rate splitting · 0.1joint source-channel decoding · 0.1
YearPublicationVenuePosition
2014 Optimal coding functions for pairwise message sharing on finite-field multi-way relay channels
abstract
This paper considers the finite-field multi-way relay channel with pairwise message sharing, where multiple users exchange messages through a single relay and where the users may share parts of their source messages (meaning that some message parts are known/common to more than one user). In this paper, we design an optimal functional-decode-forward coding scheme that takes the shared messages into account. More specifically, we design an optimal function for the relay to decode (from the users on the uplink) and forward (back to the users on the downlink). We then show that this proposed function-decode-forward coding scheme can achieve the capacity region of the finite-field multi-way relay channel with pairwise message sharing. This paper generalizes our previous result for the case of three users to any number of users.
Lawrence Ong, Sarah Johnson 0001, Christopher M. Kellett
ICC3
2013 The Three-User Finite-Field Multi-Way Relay Channel with Correlated Sources
abstract
This paper studies the three-user finite-field multi-way relay channel, where the users exchange messages via a relay. The messages are arbitrarily correlated, and the finite-field channel is linear and is subject to additive noise of arbitrary distribution. The problem is to determine the minimum achievable source-channel rate, defined as channel uses per source symbol needed for reliable communication. We combine Slepian-Wolf source coding and functional-decode-forward channel coding to obtain the solution for two classes of source and channel combinations. Furthermore, for correlated sources that have their common information equal their mutual information, we propose a new coding scheme to achieve the minimum source-channel rate.
Lawrence Ong, Gottfried Lechner, Sarah Johnson 0001, Christopher M. Kellett
IEEE Trans. Commun.4
2012 The Half-Duplex AWGN Single-Relay Channel: Full Decoding or Partial Decoding?
abstract
This paper compares the partial-decode-forward and the complete-decode-forward coding strategies for the half-duplex Gaussian single-relay channel. We analytically show that the rate achievable by partial-decode-forward outperforms that of the more straightforward complete-decode-forward by at most 12.5%. Furthermore, in the following asymptotic cases, the gap between the partial-decode-forward and the complete-decode-forward rates diminishes: (i) when the relay is close to the source, (ii) when the relay is close to the destination, and (iii) when the SNR is low. In addition, when the SNR increases, this gap, when normalized to the complete-decode-forward rate, also diminishes. Consequently, significant performance improvements are not achieved by optimizing the fraction of data the relay should decode and forward, over simply decoding the entire source message.
Lawrence Ong, Sarah Johnson 0001, Christopher M. Kellett
IEEE Trans. Commun.3
2012 On the Equal-Rate Capacity of the AWGN Multiway Relay Channel
abstract
The$L$-user additive white Gaussian noise multiway relay channel is investigated, where$L$users exchange information at the same rate through a single relay. A new achievable rate region, based on the functional-decode-forward coding strategy, is derived. For the case where there are three or more users, and all nodes transmit at the same power, the capacity is obtained. For the case where the relay power scales with the number of users, it is shown that both compress-forward and functional-decode-forward achieve rates within a constant number of bits of the capacity at all SNR levels; in addition, functional-decode-forward outperforms compress-forward and complete-decode-forward at high SNR levels.
Lawrence Ong, Christopher M. Kellett, Sarah Johnson 0001
IEEE Trans. Inf. Theory2
2011 On achievable rate regions of the asymmetric AWGN two-way relay channel
abstract
This paper investigates the additive white Gaussian noise two-way relay channel, where two users exchange messages through a relay. Asymmetrical channels are considered where the users can transmit data at different rates and at different power levels. We modify and improve existing coding schemes to obtain three new achievable rate regions. Comparing four downlink-optimal coding schemes, we show that the scheme that gives the best sum-rate performance is (i) complete-decode-forward, when both users transmit at low signal-to-noise ratio (SNR); (ii) functional-decode-forward with nested lattice codes, when both users transmit at high SNR; (iii) functional-decode-forward with rate splitting and time-division multiplexing, when one user transmits at low SNR and another user at medium-high SNR.
Lawrence Ong, Christopher M. Kellett, Sarah Johnson 0001
ISIT2
2011 The finite field multi-way relay channel with correlated sources: The three-user case
abstract
The three-user finite field multi-way relay channel with correlated sources is considered. The three users generate possibly correlated messages, and each user is to transmit its message to the two other users reliably in the Shannon sense. As there is no direct link among the users, communication is carried out via a relay, and the link from the users to the relay and those from the relay to the users are finite field adder channels with additive noise of arbitrary distribution. The problem is to determine the set of all possible achievable rates, defined as channel uses per source symbol for reliable communication. For two classes of source/channel combinations, the solution is obtained using Slepian-Wolf source coding combined with functional-decode-forward channel coding.
Lawrence Ong, Roy Timo, Gottfried Lechner, Sarah Johnson 0001, Christopher M. Kellett
ISIT5
2011 The Capacity Region of Multiway Relay Channels Over Finite Fields With Full Data Exchange
abstract
The multiway relay channel is a multicast network whereLusers exchange data through a relay. In this paper, the capacity region of a class of multiway relay channels is derived, where the channel inputs and outputs take values over finite fields. The cut-set upper bound to the capacity region is derived and is shown to be achievable by our proposed functional-decode-forward coding strategy. More specifically, for the general case where the users can transmit at possibly different rates, functional-decode-forward, combined with rate splitting and joint source-channel decoding, is proved to achieve the capacity region; while for the case where all users transmit at a common rate, rate splitting and joint source-channel decoding are not required to achieve the capacity. That the capacity-achieving coding strategies do not utilize the users' received signals in the users' encoding functions implies that feedback does not increase the capacity region of this class of multiway relay channels.
Lawrence Ong, Sarah Johnson 0001, Christopher M. Kellett
IEEE Trans. Inf. Theory3
2010 The binary-symmetric parallel-relay network
abstract
We present capacity results of the binary-symmetric parallel-relay network, where there is one source, one destination, and K relays in parallel. We show that forwarding relays, where the relays merely transmit their received signals, achieve the capacity in two ways: with coded transmission at the source and a finite number of relays, or uncoded transmission at the source and a sufficiently large number of relays. On the other hand, decoding relays, where the relays decode the source message, re-encode, and forward it to the destination, achieve the capacity when the number of relays is small.
Lawrence Ong, Sarah Johnson 0001, Christopher M. Kellett
ISIT3
2010 Capacity Theorems for the AWGN multi-way relay channel
abstract
The L-user additive white Gaussian noise multi-way relay channel is considered, where multiple users exchange information through a single relay at a common rate. Existing coding strategies, i.e., complete-decode-forward and compress-forward are shown to be bounded away from the cut-set upper bound at high signal-to-noise ratios (SNR). It is known that the gap between the compress-forward rate and the capacity upper bound is a constant at high SNR, and that between the complete-decode-forward rate and the upper bound increases with SNR at high SNR. In this paper, a functional-decode-forward coding strategy is proposed. It is shown that for L ≥ 3, complete-decode-forward achieves the capacity when SNR ≤ 0 dB, and functional-decode-forward achieves the capacity when SNR ≥ 0 dB. For L = 2, functional-decode-forward achieves the capacity asymptotically as SNR increases.
Lawrence Ong, Christopher M. Kellett, Sarah Johnson 0001
ISIT2
2006 Bifurcations and EXIT charts for the Binary Erasure Channel
abstract
In this paper we present an abstraction of the extrinsic information transfer (EXIT) chart as the interconnection of two nonlinear systems in feedback with each other. We present results on the stability of fixed points for such a dynamical system and use this framework to rederive the well-known stability condition, connecting this to the one-dimensional dynamical system describing the fractions of erasure for low-density parity-check (LDPC) codes on the binary erasure channel (BEC). We observe that the error threshold corresponds to a fixed point bifurcation for this one-dimensional system, and show that this information can be visualized using a well-known tool from control theory: the root locus plot. We further show that these bifurcations can be seen by examining the EXIT chart
Christopher M. Kellett, Steven R. Weller
ISIT1