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document type:
congress contribution (original)
title:
Learning The MMSE Channel Predictor
keywords:
Time-variant channel state information, minimum mean squared error prediction, machine learning, neural networks
authors:
Turan, Nurettin; Utschick, Wolfgang
pages:
21
congress title:
arXiv
year:
2019
month:
November
abstract:
We present a neural network based predictor which is derived by starting from the linear minimum mean squared error (LMMSE) predictor and by further making two key assumptions. With these assumptions, we first derive a weighted sum of LMMSE predictors which is motivated by the structure of the optimal MMSE predictor. This predictor provides an initialization (weight matrices, biases and activation function) to a feed-forward neural network based predictor. With a properly learned neural network,...     »
language:
en
WWW:
Learning The MMSE Channel Predictor
TUM-institution:
Fakultät für Elektrotechnik und Informationstechnik
ingested:
17.11.2019
format:
text