Data Fitting and Uncertainty

Data Fitting and Uncertainty

Einband:
Kartonierter Einband
EAN:
9783658114558
Untertitel:
A practical introduction to weighted least squares and beyond
Genre:
Elektrotechnik
Autor:
Tilo Strutz
Herausgeber:
Springer-Verlag GmbH
Auflage:
2nd ed. 2016
Anzahl Seiten:
281
Erscheinungsdatum:
05.01.2016
ISBN:
978-3-658-11455-8

The primary goal of this book is to provide a recipe explaining the functioning of data fitting via least squares and the emphasis here is on practical matters, not on theoretical problems. In addition, the book enables the reader to design own software implementation with application-specific model functions based on the comprehensive discussion of several examples. It includes a self-contained introduction and presents the method in a logical and accessible fashion. The subject of data fitting bridges many disciplines, especially those dealing traditionally with statistics as, for instance, physics, mathematics, engineering, biology, economy, or psychology, but also more recent fields as computer vision. This book is addressed to engineers and computer scientists or corresponding undergraduates, which are interested in data fitting by the method of least-squares approximation, but have no or only limited pre-knowledge in this field. Experienced readers will find new details and interpretations or might appreciate the book as useful reference. The text is accompanied with working source code in ANSI-C for the fitting with weighted least squares including outlier detection.

Fast guide to Data Fitting and Uncertainty A self-contained introduction Design your own software implementations

Vorwort
Suitable for beginners in this field

Autorentext
Dr.-Ing. habil. Tilo Strutz is professor at Leipzig University of Telecommunications (Deutsche Telekom). His expertise is ranging from general signal processing to special problems of image processing and data compression.

Inhalt
Framework of Least-Squares Method.- Introduction to Data-Fitting Problems.- Estimation of Model Parameters by the Method of Least Squares.- Weights and Outliers.- Uncertainty of Results.- Mathematics, Optimisation Methods, and Add ons.- Matrix Algebra.- The Idea behind Least Squares.- Supplemental Tools and Methods.- A Comparison of Approaches to Outlier Detection.- Implementation.


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