Two-dimensional iterative processing for DAB receivers based on trellis-decomposition (Q415828)
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scientific article; zbMATH DE number 6031999
| Language | Label | Description | Also known as |
|---|---|---|---|
| English | Two-dimensional iterative processing for DAB receivers based on trellis-decomposition |
scientific article; zbMATH DE number 6031999 |
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Two-dimensional iterative processing for DAB receivers based on trellis-decomposition (English)
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9 May 2012
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Summary: We investigate iterative trellis decoding techniques for DAB, with the objective of gaining from processing 2D-blocks in an OFDM scheme, that is, blocks based on the time and frequency dimension, and from trellis decomposition. Trellis-decomposition methods allow us to estimate the unknown channel phase since this phase relates to the sub-trellises. We will determine a-posteriori sub-trellis probabilities, and use these probabilities for weighting the a-posteriori symbol probabilities resulting from all the sub-trellises. Alternatively we can determine a dominant sub-trellis and use the a-posteriori symbol probabilities corresponding to this dominant sub-trellis. This dominant sub-trellis approach results in a significant complexity reduction. We will investigate both iterative and non-iterative methods. The advantage of non-iterative methods is that their forwardbackward procedures are extremely simple; however, also their gain of 0.7 dB, relative to two-symbol differential detection (2SDD) at a BER of \(10^{-4}\), is modest. Iterative procedures lead to the significantly larger gain of 3.7 dB at a BER of \(10^{-4}\) for five iterations, where a part of this gain comes from 2D processing. Simulations of our iterative approach applied to the TU-6 (COST207) channel show that we get an improvement of 2.4 dB at a Doppler frequency of 10 Hz.
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trellis decoding
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digital audio broadcasting (DAB)
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orthogonal frequency division multiplexing (OFDM)
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dominant sub-trellis
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