Optimal modulation and coding scheme selection in cellular networks with hybrid-ARQ error control

We propose an optimal modulation and coding scheme (MCS) selection criterion for maximizing user throughput in cellular networks. The proposed criterion adopts both the Chase combining and incremental redundancy based hybrid automatic repeat request (HARQ) mechanisms and it selects an MCS level that...

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Veröffentlicht in:IEEE transactions on wireless communications Jg. 7; H. 12; S. 5195 - 5201
Hauptverfasser: Kim, Dongwook, Jung, Bang, Lee, Hanjin, Sung, Dan, Yoon, Hyunsoo
Format: Journal Article
Sprache:Englisch
Veröffentlicht: New York, NY IEEE 01.12.2008
Institute of Electrical and Electronics Engineers
The Institute of Electrical and Electronics Engineers, Inc. (IEEE)
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ISSN:1536-1276, 1558-2248
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Abstract We propose an optimal modulation and coding scheme (MCS) selection criterion for maximizing user throughput in cellular networks. The proposed criterion adopts both the Chase combining and incremental redundancy based hybrid automatic repeat request (HARQ) mechanisms and it selects an MCS level that maximizes the expected throughput which is estimated by considering both the number of transmissions and successful decoding probability in HARQ operation. We also prove that the conventional MCS selection rule is not optimized with mathematical analysis. Through link-level and system-level simulations, we show that the proposed MCS selection criterion yields higher average cell throughput than the conventional MCS selection schemes for slowly varying channels.
AbstractList We propose an optimal modulation and coding scheme (MCS) selection criterion for maximizing user throughput in cellular networks. The proposed criterion adopts both the Chase combining and incremental redundancy based hybrid automatic repeat request (HARQ) mechanisms and it selects an MCS level that maximizes the expected throughput which is estimated by considering both the number of transmissions and successful decoding probability in HARQ operation. We also prove that the conventional MCS selection rule is not optimized with mathematical analysis. Through link-level and system-level simulations, we show that the proposed MCS selection criterion yields higher average cell throughput than the conventional MCS selection schemes for slowly varying channels.
Author Hanjin Lee
Bang Jung
Dan Sung
Dongwook Kim
Hyunsoo Yoon
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  givenname: Hyunsoo
  surname: Yoon
  fullname: Yoon, Hyunsoo
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Issue 12
Keywords State feedback
modulation and coding scheme (MCS)
OFDM
Wireless telecommunication
Information rate
Cell network
incremental redundancy (IR)
Chase combining
Mathematical analysis
HSDPA
Selection criterion
Feedforward
Modulation coding
Mobile radiocommunication
Redundancy
hybrid automatic repeat request (HARQ)
Decoding
Hybrid mode
Information transmission
Simulation
Telecommunication network
Orthogonal frequency division multiplexing
Optimal code
Automatic repeat request
expected throughput
Link adaptation (LA)
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Snippet We propose an optimal modulation and coding scheme (MCS) selection criterion for maximizing user throughput in cellular networks. The proposed criterion adopts...
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SubjectTerms Applied sciences
Automatic repeat request
Cellular
Cellular communication
Channels
Chase combining
Coding
Coding, codes
Criteria
Decoding
Equipments and installations
Error correction
Exact sciences and technology
expected
HSDPA
hybrid automatic repeatrequest (HARQ)
incremental redundancy
Information, signal and communications theory
IR
Land mobile radio cellular systems
Link adaptation (LA)
Mathematical analysis
Mobile radiocommunication systems
Modulation
modulation and coding scheme (MCS)
Modulation coding
Multiaccess communication
Multiplexing
OFDM
OFDM modulation
Optimization
Radiocommunications
Redundancy
Signal and communications theory
Systems, networks and services of telecommunications
Telecommunications
Telecommunications and information theory
Throughput
Transmission and modulation (techniques and equipments)
Title Optimal modulation and coding scheme selection in cellular networks with hybrid-ARQ error control
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