Publication | Closed Access
Channel estimation and symbol detection for block transmission using data-dependent superimposed training
184
Citations
7
References
2005
Year
Statistical Signal ProcessingEngineeringMachine LearningChannel Capacity EstimationJoint Source-channel CodingPattern RecognitionAdaptive ModulationComputer EngineeringModulation CodingSuperimposed TrainingComputer ScienceChannel EstimationCoding TheorySymbol DetectionChannel CharacterizationSignal ProcessingBlock Transmission
We address the problem of frequency-selective channel estimation and symbol detection using superimposed training. The superimposed training consists of the sum of a known sequence and a data-dependent sequence that is unknown to the receiver. The data-dependent sequence cancels the effects of the unknown data on channel estimation. The performance of the proposed approach is shown to significantly outperform existing methods based on superimposed training (ST).
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