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Open AccessDissertation

On Linear Transmission Systems

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TLDR
The object in Part I is to study the impact of both the signaling rate and the pulse shape on the information rate of single antenna, single carrier linear modulation systems, and a iterative optimization method is developed, which produces precoders improving upon the best known ones in the literature.
Abstract
This thesis is divided into two parts. Part I analyzes the information rate of single antenna, single carrier linear modulation systems. The information rate of a system is the maximum number of bits that can be transmitted during a channel usage, and is achieved by Gaussian symbols. It depends on the underlying pulse shape in a linear modulated signal and also the signaling rate, the rate at which the Gaussian symbols are transmitted. The object in Part I is to study the impact of both the signaling rate and the pulse shape on the information rate. Part II of the thesis is devoted to multiple antenna systems (MIMO), and more specifically to linear precoders for MIMO channels. Linear precoding is a practical scheme for improving the performance of a MIMO system, and has been studied intensively during the last four decades. In practical applications, the symbols to be transmitted are taken from a discrete alphabet, such as quadrature amplitude modulation (QAM), and it is of interest to find the optimal linear precoder for a certain performance measure of the MIMO channel. The design problem depends on the particular performance measure and the receiver structure. The main difficulty in finding the optimal precoders is the discrete nature of the problem, and mostly suboptimal solutions are proposed. The problem has been well investigated when linear receivers are employed, for which optimal precoders were found for many different performance measures. However, in the case of the optimal maximum likelihood (ML) receiver, only suboptimal constructions have been possible so far. Part II starts by proposing new novel, low complexity, suboptimal precoders, which provide a low bit error rate (BER) at the receiver. Later, an iterative optimization method is developed, which produces precoders improving upon the best known ones in the literature. The resulting precoders turn out to exhibit a certain structure, which is then analyzed and proved to be optimal for large alphabets.

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Dissertation

Reduced Receivers for Faster-than-Nyquist Signaling and General Linear Channels

Adnan Prlja
TL;DR: A framework to design reduced-complexity receivers for FTN and general linear channels that achieve optimal or near-optimal performance and an improvement of the minimum phase conversion that sharpens the focus of the ISI model energy is proposed.
References
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Proceedings ArticleDOI

A Comparison between Unitary and Non-Unitary Precoder Design for MIMO Channels with MMSE Detection and Limited Feedback

TL;DR: For small precoder codebooks, unitary precoding performs as good as non-unitary, while for larger codebooks non- unitary precoding outperforms unitary Precoding.
Proceedings ArticleDOI

On maximum achievable information rates of single-carrier and multi-carrier systems over the ultra wideband channels

TL;DR: Numerical results show the mutual information of SC APP system is better than that of OFDM system over UWB channels, though SC FDE alone causes capacity loss of SC system due to residual ISI of linear MMSE processing, so a hybrid nonlinear or iterative SC system to eliminate the residual ISI is indispensable.

Efficiently Enumerating Unimodular Mappings

TL;DR: Methods to efficientyly enumerate unimodular mappings to automatically parallelize a given loop nest enumerate many different possible mappings and choose the best of these according to some heuristic.
Proceedings ArticleDOI

Linear Precoders for Parallel Gaussian Channels with Low Decoding Complexity

TL;DR: This work constructs precoders that are constrained to have a decoding complexity which equals that of no precode, while still improving the system performance significantly compared with the no precoding case.
Proceedings ArticleDOI

A lattice precoding scheme for flat-fading MIMO channels

TL;DR: This paper provides some details of a novel vector perturbation based lattice precoding algorithm based on Eigenvalue decomposition, named EDLP, for single user multiple-input multiple-output (MIMO) systems operating over slowly-varying flat-fading channels.
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