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عنوان
Statistical analysis with missing data /

پدید آورنده
Roderick J.A. Little, Donald B. Rubin.

موضوع
Mathematical statistics, Problems, exercises, etc.,Mathematical statistics.,Missing observations (Statistics),Missing observations (Statistics), Problems, exercises, etc.,Mathematical statistics.,MATHEMATICS-- Applied.,MATHEMATICS-- Probability & Statistics-- General.,Missing observations (Statistics)

رده
QA276

کتابخانه
Center and Library of Islamic Studies in European Languages

محل استقرار
استان: Qom ـ شهر: Qom

Center and Library of Islamic Studies in European Languages

تماس با کتابخانه : 32910706-025

INTERNATIONAL STANDARD BOOK NUMBER

(Number (ISBN
0470526793
(Number (ISBN
1118595696
(Number (ISBN
1118596013
(Number (ISBN
1119482267
(Number (ISBN
9780470526798
(Number (ISBN
9781118595695
(Number (ISBN
9781118596012
(Number (ISBN
9781119482260
Erroneous ISBN
9781118595695

TITLE AND STATEMENT OF RESPONSIBILITY

Title Proper
Statistical analysis with missing data /
General Material Designation
[Book]
First Statement of Responsibility
Roderick J.A. Little, Donald B. Rubin.

EDITION STATEMENT

Edition Statement
Third edition.

.PUBLICATION, DISTRIBUTION, ETC

Place of Publication, Distribution, etc.
Hoboken, NJ :
Name of Publisher, Distributor, etc.
Wiley,
Date of Publication, Distribution, etc.
2020.

PHYSICAL DESCRIPTION

Specific Material Designation and Extent of Item
1 online resource

SERIES

Series Title
Wiley series in probability and statistics

INTERNAL BIBLIOGRAPHIES/INDEXES NOTE

Text of Note
Includes bibliographical references and index.
Text of Note
Includes bibliographical references and indexes.

CONTENTS NOTE

Text of Note
Intro; Statistical Analysis with Missing Data; Contents; Preface to the Third Edition; Part I Overview and Basic Approaches; 1 Introduction; 1.1 The Problem of Missing Data; 1.2 Missingness Patterns and Mechanisms; 1.3 Mechanisms That Lead to Missing Data; 1.4 A Taxonomy of Missing Data Methods; Problems; Note; 2 Missing Data in Experiments; 2.1 Introduction; 2.2 The Exact Least Squares Solution with Complete Data; 2.3 The Correct Least Squares Analysis with Missing Data; 2.4 Filling in Least Squares Estimates; 2.4.1 Yatess Method; 2.4.2 Using a Formula for the Missing Values
Text of Note
2.4.3 Iterating to Find the Missing Values2.4.4 ANCOVA with Missing Value Covariates; 2.5 Bartletts ANCOVA Method; 2.5.1 Useful Properties of Bartletts Method; 2.5.2 Notation; 2.5.3 The ANCOVA Estimates of Parameters and Missing Y-Values; 2.5.4 ANCOVA Estimates of the Residual Sums of Squares and the Covariance Matrix of; 2.6 Least Squares Estimates of Missing Values by ANCOVA Using Only Complete-Data Methods; 2.7 Correct Least Squares Estimates of Standard Errors and One Degree of Freedom Sums of Squares; 2.8 Correct Least-Squares Sums of Squares with More Than One Degree of Freedom
Text of Note
4.3.1 Draws Based on Explicit Models4.3.2 Draws Based on Implicit Models-Hot Deck Methods; 4.4 Conclusion; Problems; 5 Accounting for Uncertainty from Missing Data; 5.1 Introduction; 5.2 Imputation Methods that Provide Valid Standard Errors from a Single Filled-in Data Set; 5.3 Standard Errors for Imputed Data by Resampling; 5.3.1 Bootstrap Standard Errors; 5.3.2 Jackknife Standard Errors; 5.4 Introduction to Multiple Imputation; 5.5 Comparison of Resampling Methods and Multiple Imputation; Problems; Part II Likelihood-Based Approaches to the Analysis of Data with Missing Values
Text of Note
6 Theory of Inference Based on the Likelihood Function6.1 Review of Likelihood-Based Estimation for Complete Data; 6.1.1 Maximum Likelihood Estimation; 6.1.2 Inference Based on the Likelihood; 6.1.3 Large Sample Maximum Likelihood and Bayes Inference; 6.1.4 Bayes Inference Based on the Full Posterior Distribution; 6.1.5 Simulating Posterior Distributions; 6.2 Likelihood-Based Inference with Incomplete Data; 6.3 A Generally Flawed Alternative to Maximum Likelihood: Maximizing over the Parameters and the Missing Data; 6.3.1 The Method; 6.3.2 Background; 6.3.3 Examples
Text of Note
Problems3 Complete-Case and Available-Case Analysis, Including Weighting Methods; 3.1 Introduction; 3.2 Complete-Case Analysis; 3.3 Weighted Complete-Case Analysis; 3.3.1 Weighting Adjustments; 3.3.2 Poststratification and Raking to Known Margins; 3.3.3 Inference from Weighted Data; 3.3.4 Summary of Weighting Methods; 3.4 Available-Case Analysis; Problems; 4 Single Imputation Methods; 4.1 Introduction; 4.2 Imputing Means from a Predictive Distribution; 4.2.1 Unconditional Mean Imputation; 4.2.2 Conditional Mean Imputation; 4.3 Imputing Draws from a Predictive Distribution
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SUMMARY OR ABSTRACT

Text of Note
AN UP-TO-DATE, COMPREHENSIVE TREATMENT OF A CLASSIC TEXT ON MISSING DATA IN STATISTICS The topic of missing data has gained considerable attention in recent decades. This new edition by two acknowledged experts on the subject offers an up-to-date account of practical methodology for handling missing data problems. Blending theory and application, authors Roderick Little and Donald Rubin review historical approaches to the subject and describe simple methods for multivariate analysis with missing values. They then provide a coherent theory for analysis of problems based on likelihoods derived from statistical models for the data and the missing data mechanism, and then they apply the theory to a wide range of important missing data problems. Statistical Analysis with Missing Data, Third Edition starts by introducing readers to the subject and approaches toward solving it. It looks at the patterns and mechanisms that create the missing data, as well as a taxonomy of missing data. It then goes on to examine missing data in experiments, before discussing complete-case and available-case analysis, including weighting methods. The new edition expands its coverage to include recent work on topics such as nonresponse in sample surveys, causal inference, diagnostic methods, and sensitivity analysis, among a host of other topics. An updated "classic" written by renowned authorities on the subject Features over 150 exercises (including many new ones) Covers recent work on important methods like multiple imputation, robust alternatives to weighting, and Bayesian methods Revises previous topics based on past student feedback and class experience Contains an updated and expanded bibliography Statistical Analysis with Missing Data, Third Edition is an ideal textbook for upper undergraduate and/or beginning graduate level students of the subject. It is also an excellent source of information for applied statisticians and practitioners in government and industry.

ACQUISITION INFORMATION NOTE

Source for Acquisition/Subscription Address
Wiley
Stock Number
9781118595695

OTHER EDITION IN ANOTHER MEDIUM

Title
Statistical analysis with missing data.
International Standard Book Number
9780470526798

TOPICAL NAME USED AS SUBJECT

Mathematical statistics, Problems, exercises, etc.
Mathematical statistics.
Missing observations (Statistics)
Missing observations (Statistics), Problems, exercises, etc.
Mathematical statistics.
MATHEMATICS-- Applied.
MATHEMATICS-- Probability & Statistics-- General.
Missing observations (Statistics)

(SUBJECT CATEGORY (Provisional

MAT-- 003000
MAT-- 029000

DEWEY DECIMAL CLASSIFICATION

Number
519
.
5
Edition
23

LIBRARY OF CONGRESS CLASSIFICATION

Class number
QA276

PERSONAL NAME - PRIMARY RESPONSIBILITY

Little, Roderick J. A.

PERSONAL NAME - ALTERNATIVE RESPONSIBILITY

Rubin, Donald B.

ORIGINATING SOURCE

Date of Transaction
20200822113818.0
Cataloguing Rules (Descriptive Conventions))
pn

ELECTRONIC LOCATION AND ACCESS

Electronic name
 مطالعه متن کتاب 

[Book]

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