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On the contrary, the high performance equalization objective can be met if the prototype filter (employed in the FBMC/OQAM scheme) is designed using the frequency sampling technique introduced in [8] and developed in [5].
Thus, in order to be accepted, the FBMC/OQAM approach must have a high performance equalization capability, particularly in the asynchronous context, characterized by the fact that the system must compensate simultaneously the timing offset, the frequency offset, and the channel distortion.
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A high-performance equalization scheme is described in this paper.
It is therefore an important challenge to develop high-performance equalization schemes for doubly selective channels.
It was found that DPD gave better performance than equalization in terms of TD.
After the channel parameters are estimated, they are fed to the minimum mean-square error (MMSE) detector to improve the performance of equalization.
Although ΔDRR exactly describes the reverberant energy suppression, it cannot be solely used to evaluate the dereverberation performance of equalization techniques, since it does not provide any insight on the reverberant energy decay rate.
In contrast, the DM timing recovery approach produces a peaky baud-spaced channel impulse response to offer better equalization performance for short equalizers.
We also study the effect of small channel coefficients on the maximum eigenvalue and present a detection method for the PCCA to guarantee the equalization performance better than a specified performance requirement.
However, decreasing the reshaping filter length also reduces the equalization performance with respect to the true RIRs, resulting in a trade-off between equalization performance for perfectly estimated RIRs and robustness in the presence of RIR perturbations.
Performing separate equalization with joint decoding instead leads to a significant performance improvement and reduced complexity.
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