An Introduction to Sparse Stochastic Processes

An Introduction to Sparse Stochastic Processes
Author: Michael Unser,Pouya D. Tafti
Publsiher: Cambridge University Press
Total Pages: 387
Release: 2014-08-21
Genre: Computers
ISBN: 9781107058545

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A detailed guide to sparsity, providing a description of their transform-domain statistics and applying the models to practical algorithms.

An Introduction to Sparse Stochastic Processes

An Introduction to Sparse Stochastic Processes
Author: Michael A. Unser,Pouya Tafti
Publsiher: Unknown
Total Pages: 367
Release: 2014
Genre: Gaussian processes
ISBN: 1316054500

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Providing a novel approach to sparsity, this comprehensive book presents the theory of stochastic processes that are ruled by linear stochastic differential equations, and that admit a parsimonious representation in a matched wavelet-like basis. Two key themes are the statistical property of infinite divisibility, which leads to two distinct types of behaviour - Gaussian and sparse - and the structural link between linear stochastic processes and spline functions, which is exploited to simplify the mathematical analysis. The core of the book is devoted to investigating sparse processes, including a complete description of their transform-domain statistics. The final part develops practical signal-processing algorithms that are based on these models, with special emphasis on biomedical image reconstruction. This is an ideal reference for graduate students and researchers with an interest in signal/image processing, compressed sensing, approximation theory, machine learning, or statistics.

Stochastic Processes Modeling and Simulation

Stochastic Processes  Modeling and Simulation
Author: D N Shanbhag,Calyampudi Radhakrishna Rao
Publsiher: Gulf Professional Publishing
Total Pages: 1028
Release: 2003-02-24
Genre: Mathematics
ISBN: 0444500138

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This sequel to volume 19 of Handbook on Statistics on Stochastic Processes: Modelling and Simulation is concerned mainly with the theme of reviewing and, in some cases, unifying with new ideas the different lines of research and developments in stochastic processes of applied flavour. This volume consists of 23 chapters addressing various topics in stochastic processes. These include, among others, those on manufacturing systems, random graphs, reliability, epidemic modelling, self-similar processes, empirical processes, time series models, extreme value therapy, applications of Markov chains, modelling with Monte Carlo techniques, and stochastic processes in subjects such as engineering, telecommunications, biology, astronomy and chemistry. particular with modelling, simulation techniques and numerical methods concerned with stochastic processes. The scope of the project involving this volume as well as volume 19 is already clarified in the preface of volume 19. The present volume completes the aim of the project and should serve as an aid to students, teachers, researchers and practitioners interested in applied stochastic processes.

Operator Adapted Wavelets Fast Solvers and Numerical Homogenization

Operator Adapted Wavelets  Fast Solvers  and Numerical Homogenization
Author: Houman Owhadi,Clint Scovel
Publsiher: Cambridge University Press
Total Pages: 491
Release: 2019-10-24
Genre: Mathematics
ISBN: 9781108484367

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Presents interplays between numerical approximation and statistical inference as a pathway to simple solutions to fundamental problems.

Introduction to Stochastic Processes

Introduction to Stochastic Processes
Author: Erhan Cinlar
Publsiher: Courier Corporation
Total Pages: 418
Release: 2013-02-20
Genre: Mathematics
ISBN: 9780486276328

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Clear presentation employs methods that recognize computer-related aspects of theory. Topics include expectations and independence, Bernoulli processes and sums of independent random variables, Markov chains, renewal theory, more. 1975 edition.

Deep Learning for Biomedical Image Reconstruction

Deep Learning for Biomedical Image Reconstruction
Author: Jong Chul Ye,Yonina C. Eldar,Michael Unser
Publsiher: Cambridge University Press
Total Pages: 365
Release: 2023-09-30
Genre: Technology & Engineering
ISBN: 9781316517512

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Discover the power of deep neural networks for image reconstruction with this state-of-the-art review of modern theories and applications. The background theory of deep learning is introduced step-by-step, and by incorporating modeling fundamentals this book explains how to implement deep learning in a variety of modalities, including X-ray, CT, MRI and others. Real-world examples demonstrate an interdisciplinary approach to medical image reconstruction processes, featuring numerous imaging applications. Recent clinical studies and innovative research activity in generative models and mathematical theory will inspire the reader towards new frontiers. This book is ideal for graduate students in Electrical or Biomedical Engineering or Medical Physics.

Introduction To Stochastic Processes

Introduction To Stochastic Processes
Author: Paul G. Hoel
Publsiher: Unknown
Total Pages: 135
Release: 1972
Genre: Electronic Book
ISBN: 8185461694

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Explorations in Time Frequency Analysis

Explorations in Time Frequency Analysis
Author: Patrick Flandrin
Publsiher: Cambridge University Press
Total Pages: 231
Release: 2018-09-06
Genre: Mathematics
ISBN: 9781108421027

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Understand the methods of modern non-stationary signal processing with authoritative insights from a leader in the field.