In this contribution we propose a new way to state and solve the channel equalization problem for an OFDM (Orthogonal Frequency Division Multiplexing) system, without the use of a guard interval. Therefore, the spectral efficiency is increased. The approach is based on the channel representation as a polynomial matrix. We develop a new decomposition of this matrix, which diagonalizes the channel matrix independently of the channel realization. It leads to a simple inversion of the channel matrix. The decomposition consists of forward and inverse DFTs and polynomial diagonal matrices. Further on, there is no restriction on the length of the channel impulse response
The orthogonality of the cyclic prefix orthogonal frequency division multiplexing (CP-OFDM) modulati...
This paper addresses time-domain channel estimation for pilot-symbol-aided orthogonal frequency divi...
In this paper the well known Zadeh’s series representation of a linear periodically time varying sys...
Orthogonal signal-division multiplexing (OSDM) is a generalized modulation scheme to bridge the gap ...
Orthogonal signal-division multiplexing (OSDM) has recently emerged as a promising alternative to or...
In this paper, a new implementation method of OFDM (orthogonal frequency division multiplexing) syst...
In this paper, a simple equalization strategy for OFDM waveforms is proposed that specifically targe...
Abstract For rapidly time-varying channels, the performance of (orthogonal frequency division multip...
Channel matrix inversion, which requires significant hardware resource and computational power, is a...
We propose a new, low-complexity frequency-domain equalizer, which, in the absence of a guard interv...
The interest in wireless communications among consumers has exploded since the introduction of the "...
We propose a new, low-complexity frequency-domain equalizer for discrete multitone (DMT) systems, wh...
We introduce a new low complexity equalizer for Orthogonal Frequency Division Multiplexing systems w...
The thesis treats some aspects of multi-carrier modulation (MCM) and single-carrier frequency-domain...
In a typical orthogonal frequency division multiplexing (OFDM) broadband wireless communication syst...
The orthogonality of the cyclic prefix orthogonal frequency division multiplexing (CP-OFDM) modulati...
This paper addresses time-domain channel estimation for pilot-symbol-aided orthogonal frequency divi...
In this paper the well known Zadeh’s series representation of a linear periodically time varying sys...
Orthogonal signal-division multiplexing (OSDM) is a generalized modulation scheme to bridge the gap ...
Orthogonal signal-division multiplexing (OSDM) has recently emerged as a promising alternative to or...
In this paper, a new implementation method of OFDM (orthogonal frequency division multiplexing) syst...
In this paper, a simple equalization strategy for OFDM waveforms is proposed that specifically targe...
Abstract For rapidly time-varying channels, the performance of (orthogonal frequency division multip...
Channel matrix inversion, which requires significant hardware resource and computational power, is a...
We propose a new, low-complexity frequency-domain equalizer, which, in the absence of a guard interv...
The interest in wireless communications among consumers has exploded since the introduction of the "...
We propose a new, low-complexity frequency-domain equalizer for discrete multitone (DMT) systems, wh...
We introduce a new low complexity equalizer for Orthogonal Frequency Division Multiplexing systems w...
The thesis treats some aspects of multi-carrier modulation (MCM) and single-carrier frequency-domain...
In a typical orthogonal frequency division multiplexing (OFDM) broadband wireless communication syst...
The orthogonality of the cyclic prefix orthogonal frequency division multiplexing (CP-OFDM) modulati...
This paper addresses time-domain channel estimation for pilot-symbol-aided orthogonal frequency divi...
In this paper the well known Zadeh’s series representation of a linear periodically time varying sys...