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Journal ArticleDOI

Orthogonal Frequency Division Multiplexing With Index Modulation

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TLDR
It is shown via computer simulations that the proposed OFDM with index modulation scheme achieves significantly better error performance than classical OFDM due to the information bits carried in the spatial domain by the indices of OFDM subcarriers.
Abstract
In this paper, a novel orthogonal frequency division multiplexing (OFDM) scheme, called OFDM with index modulation (OFDM-IM), is proposed for operation over frequency-selective and rapidly time-varying fading channels In this scheme, the information is conveyed not only by M-ary signal constellations as in classical OFDM, but also by the indices of the subcarriers, which are activated according to the incoming bit stream Different low complexity transceiver structures based on maximum likelihood detection or log-likelihood ratio calculation are proposed and a theoretical error performance analysis is provided for the new scheme operating under ideal channel conditions Then, the proposed scheme is adapted to realistic channel conditions such as imperfect channel state information and very high mobility cases by modifying the receiver structure The approximate pairwise error probability of OFDM-IM is derived under channel estimation errors For the mobility case, several interference unaware/aware detection methods are proposed for the new scheme It is shown via computer simulations that the proposed scheme achieves significantly better error performance than classical OFDM due to the information bits carried by the indices of OFDM subcarriers under both ideal and realistic channel conditions

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Citations
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Journal ArticleDOI

Clipping Noise Cancellation for Signal Detection of GSTFIM Systems

TL;DR: Simulation results show that the proposed two detectors can obtain flexible tradeoff between performance and complexity, compared to the traditional maximum likelihood (ML) detector with clipping interference.
Proceedings ArticleDOI

Performance of Interleaved OFDM-IM over Frequency-Selective Fading Channels

Jinho Choi
TL;DR: A closed- form expression for the pairwise error probability (PEP) is derived from simulation results and it is confirmed that the theoretical results agree with them and help understand the role of interleaving in conjunction with a diversity technique.
Proceedings ArticleDOI

Performance analysis of OFDM with Quadrature Index Modulation in the presence of hardware impairment

TL;DR: A new analytical expression for the Pairwise Error Probability (PEP) over selective frequency Rayleigh fading channel is derived and is used to calculate a tight upper bound of the Average Bit Error Probable (ABEP).
Journal ArticleDOI

Mitigating Bit-Synchronization Errors in Huffman-Coding-Aided Index Modulation

TL;DR: Huffman coding for IM together with two constellation mappings for the bandpass modulation is proposed, which induces no signal overhead and is applicable when the index-domain codebook has the maximum encoding rate.
References
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Journal Article

Spatial Modulation

TL;DR: An analytical approach for symbol error ratio (SER) analysis of the SM algorithm in independent identically distributed Rayleigh channels results closely match and it is shown that SM achieves better performance in all studied channel conditions, as compared with other techniques.
Proceedings ArticleDOI

A comparison of optimal and sub-optimal MAP decoding algorithms operating in the log domain

TL;DR: A log- MAP algorithm is presented that avoids the approximations in the max-log-MAP algorithm and hence is equivalent to the true MAP, but without its major disadvantages, and it is concluded that the three algorithms increase in complexity in the order of their optimality.
Journal ArticleDOI

Space shift keying modulation for MIMO channels

TL;DR: Space shift keying concepts are extended to incorporate channel coding, where in particular, they are considered a bit interleaved coded modulation (BICM) system using iterative decoding for both convolutional and turbo codes.
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