000 02397nam a22002417a 4500
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008 240226b |||||||| |||| 00| 0 eng d
020 _a9781032118130
082 _a 519.54
_bKIM
100 _aKim, Jae Kwang
_914170
245 _aStatistical methods for handling incomplete data
250 _a2nd
260 _bCRC Press
_aLondon
_c2022
300 _a364 p.
365 _aGBP
_b44.99
500 _aTable of Contents: 1. Introduction 2. Likelihood-based Approach 3. Computation 4. Imputation 5. Multiple Imputation 6. Fractional Imputation 7. Propensity Scoring Approach 8. Nonignorable Missing Data 9. Longitudinal and Clustered Data 10. Application to Survey Sampling 11. Data Integration 12. Advanced Topics
520 _a Due to recent theoretical findings and advances in statistical computing, there has been a rapid development of techniques and applications in the area of missing data analysis. Statistical Methods for Handling Incomplete Data covers the most up-to-date statistical theories and computational methods for analyzing incomplete data.   Features Uses the mean score equation as a building block for developing the theory for missing data analysis Provides comprehensive coverage of computational techniques for missing data analysis Presents a rigorous treatment of imputation techniques, including multiple imputation fractional imputation Explores the most recent advances of the propensity score method and estimation techniques for nonignorable missing data Describes a survey sampling application Updated with a new chapter on Data Integration Now includes a chapter on Advanced Topics, including kernel ridge regression imputation and neural network model imputation The book is primarily aimed at researchers and graduate students from statistics, and could be used as a reference by applied researchers with a good quantitative background. It includes many real data examples and simulated examples to help readers understand the methodologies. (https://www.routledge.com/Statistical-Methods-for-Handling-Incomplete-Data/Kim-Shao/p/book/9781032118130)
650 _aMissing observations (Statistics)
_916614
650 _aMultiple imputation (Statistics)
_916615
650 _aMathematics - Probability & Statistics - General
_916616
650 _aStatistical matching
_916617
942 _cBK
_2ddc
999 _c5904
_d5904