Showing results for "stefan lang"
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Self and Affect
Philosophical Intersections
- Series -
- Philosophy and Religion (R0)
2025
EN
The self, self-awareness and emotions are central subjects within contemporary philosophy of mind but comparatively little attention has been paid to the relationships between them.This volume brings together philosophers from different specialisms to explore these relationships from three different angles. First, whether a theory of self-awareness can contribute to a theory of emotion, including how different aspects and kinds of self-awareness are related to different emotions. S...
Friedrich Schleiermacher’s Philosophy of Religion
Historical and Contemporary Perspectives
2025
EN
Accessible
This volume provides a comprehensive account of Friedrich Schleiermacher’s philosophy of religion. The contributors cover the historical context of Schleiermacher’s work, specific aspects of his philosophy of religion, and the ways that his work can contribute to contemporary debates.Friedrich Schleiermacher is considered one of the outstanding representatives of 19th‑century Protestant theology. This volume brings together scholars from both continental and analytic traditions to ...
Regression
Models, Methods and Applications
2022
EN
Now in its second edition, this textbook provides an applied and unified introduction to parametric, nonparametric and semiparametric regression that closes the gap between theory and application. The most important models and methods in regression are presented on a solid formal basis, and their appropriate application is shown through numerous examples and case studies. The most important definitions and statements are concisely summarized in boxes, and the underlying data sets and code ...
Regression
Models, Methods and Applications
2013
EN
The aim of this book is an applied and unified introduction into parametric, non- and semiparametric regression that closes the gap between theory and application. The most important models and methods in regression are presented on a solid formal basis, and their appropriate application is shown through many real data examples and case studies. Availability of (user-friendly) software has been a major criterion for the methods selected and presented. Thus, the book primarily targets an au...
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2010
EN
Boost Your grades with this illustrated Study Guide. You will use it from an undergraduate school all the way to graduate school and beyond.FEATURES:- Written in concise and clear English - Illustrated with graphs and diagrams - Use your down time to prepare for an exam. - Includes Glossary of probability and statistics TABLE OF CONTENTS:Introduction: History Conceptual overview Statistical methods Specialized disciplines SoftwareProbability: Event Statistical Independence Interpretations ...
An Introduction to Statistical Learning
with Applications in R
2013
EN
An Introduction to Statistical Learning provides an accessible overview of the field of statistical learning, an essential toolset for making sense of the vast and complex data sets that have emerged in fields ranging from biology to finance to marketing to astrophysics in the past twenty years. This book presents some of the most important modeling and prediction techniques, along with relevant applications. Topics include linear regression, classification, resampling met...
Designing Experiments and Analyzing Data
A Model Comparison Perspective, Third Edition
2017
EN
Accessible
Designing Experiments and Analyzing Data: A Model Comparison Perspective (3rd edition) offers an integrative conceptual framework for understanding experimental design and data analysis. Maxwell, Delaney, and Kelley first apply fundamental principles to simple experimental designs followed by an application of the same principles to more complicated designs. Their integrative conceptual framework better prepares readers to understand the logic behind a general strategy of data analysis tha...
Data Analysis and Data Mining
An Introduction
2012
EN
An introduction to statistical data mining, Data Analysis and Data Mining is both textbook and professional resource. Assuming only a basic knowledge of statistical reasoning, it presents core concepts in data mining and exploratory statistical models to students and professional statisticians-both those working in communications and those working in a technological or scientific capacity-who have a limited knowledge of data mining. This book presents key statistical concepts by w...
System Identification
Theory for the User
1998
EN
The field's leading text, now completely updated.Modeling dynamical systems — theory, methodology, and applications.Lennart Ljung's System Identification: Theory for the User is a complete, coherent description of the theory, methodology, and practice of System Identification. This completely revised Second Edition introduces subspace methods, methods that utilize frequency domain data, and general non-linear black box methods, including neural networks and neuro-f...
2015
EN
A valuable overview of the most important ideas and results in statistical modelingWritten by a highly-experienced author, Foundations of Linear and Generalized Linear Models is a clear and comprehensive guide to the key concepts and results of linearstatistical models. The book presents a broad, in-depth overview of the most commonly usedstatistical models by discussing the theory underlying the models, R software applications,and examples with crafted mo...
Cause and Correlation in Biology
A User's Guide to Path Analysis, Structural Equations and Causal Inference with R
2016
EN
Many problems in biology require an understanding of the relationships among variables in a multivariate causal context. Exploring such cause-effect relationships through a series of statistical methods, this book explains how to test causal hypotheses when randomised experiments cannot be performed. This completely revised and updated edition features detailed explanations for carrying out statistical methods using the popular and freely available R statistical language. Sections on d-sep...
2003
EN
Models and likelihood are the backbone of modern statistics. This 2003 book gives an integrated development of these topics that blends theory and practice, intended for advanced undergraduate and graduate students, researchers and practitioners. Its breadth is unrivaled, with sections on survival analysis, missing data, Markov chains, Markov random fields, point processes, graphical models, simulation and Markov chain Monte Carlo, estimating functions, asymptotic approximations, local lik...











