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  • MPI-MMG  (7)
  • English  (7)
  • German
  • Social sciences Statistical methods  (7)
  • Computer Science  (7)
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  • English  (7)
  • German
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  • 1
    Book
    Book
    Los Angeles : SAGE
    ISBN: 9781506341002 , 1506341004
    Language: English
    Pages: xxv, 286 Seiten , Illustrationen, Diagramme , 24 cm
    Edition: Second edition
    DDC: 005.5/5
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    Keywords: SPSS for Windows ; SPSS for Windows SPSS for Windows ; Social sciences Statistical methods ; Computer programs ; Social sciences Statistical methods ; Computer programs ; Social sciences Statistical methods ; Computer programs
    Note: Includes index , Part I: Statistical Principles , Research Principles , Sampling , Working in SPSS , Part II: Statistical Processes , Descriptive Statistics , t Test and Mann-Whitney U Test , ANOVA and Kruskal-Wallis Test , Paired t Test and Wilcoxon Test , Correlation and Regression: Pearson and Spearman , Chi-Square , Part III: Data Handling , Supplemental SPSS Operations
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  • 2
    Book
    Book
    Oakland, Calif. : University of California Press
    ISBN: 0520280989 , 0520280970 , 9780520280984 , 9780520280977
    Language: English
    Pages: XI, 252 S. , graph. Darst.
    Edition: 1. ed.
    DDC: 006.3/12
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    Keywords: Social sciences Data processing ; Social sciences Statistical methods ; Data mining ; Sozialwissenschaften ; Data Mining ; Sozialwissenschaften ; Data Mining
    Abstract: "We live, today, in world of big data. The amount of information collected on human behavior every day is staggering, and exponentially greater than at any time in the past. At the same time, we are inundated by stories of powerful algorithms capable of churning through this sea of data and uncovering patterns. These techniques go by many names - data mining, predictive analytics, machine learning - and they are being used by governments as they spy on citizens and by huge corporations are they fine-tune their advertising strategies. And yet social scientists continue mainly to employ a set of analytical tools developed in an earlier era when data was sparse and difficult to come by. In this timely book, Paul Attewell and David Monaghan provide a simple and accessible introduction to Data Mining geared towards social scientists. They discuss how the data mining approach differs substantially, and in some ways radically, from that of conventional statistical modeling familiar to most social scientists. They demystify data mining, describing the diverse set of techniques that the term covers and discussing the strengths and weaknesses of the various approaches. Finally they give practical demonstrations of how to carry out analyses using data mining tools in a number of statistical software packages. It is the hope of the authors that this book will empower social scientists to consider incorporating data mining methodologies in their analytical toolkits"--Provided by publisher
    Abstract: "We live, today, in world of big data. The amount of information collected on human behavior every day is staggering, and exponentially greater than at any time in the past. At the same time, we are inundated by stories of powerful algorithms capable of churning through this sea of data and uncovering patterns. These techniques go by many names - data mining, predictive analytics, machine learning - and they are being used by governments as they spy on citizens and by huge corporations are they fine-tune their advertising strategies. And yet social scientists continue mainly to employ a set of analytical tools developed in an earlier era when data was sparse and difficult to come by. In this timely book, Paul Attewell and David Monaghan provide a simple and accessible introduction to Data Mining geared towards social scientists. They discuss how the data mining approach differs substantially, and in some ways radically, from that of conventional statistical modeling familiar to most social scientists. They demystify data mining, describing the diverse set of techniques that the term covers and discussing the strengths and weaknesses of the various approaches. Finally they give practical demonstrations of how to carry out analyses using data mining tools in a number of statistical software packages. It is the hope of the authors that this book will empower social scientists to consider incorporating data mining methodologies in their analytical toolkits"--Provided by publisher
    Note: Literaturverz. S. 239-244 , Erscheinungsjahr in Vorlageform:[2015]
    Library Location Call Number Volume/Issue/Year Availability
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  • 3
    Book
    Book
    Los Angeles [u.a.] : Sage Publ.
    ISBN: 9781847879073 , 9781847879066
    Language: English
    Pages: XXXIII, 821 S. , Ill., graph. Darst. , 27 cm
    Edition: 3. ed.
    DDC: 519.50285536
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    Keywords: SPSS for Windows ; Statistische Methodenlehre ; PC-Software ; Programmiersprache ; Theorie ; Social sciences Statistical methods ; Computer programs ; Datenverarbeitung ; Hilfswissenschaften ; SPSS ; Lehrbuch ; Glossar enthalten ; Statistik ; SPSS
    Abstract: Andy Field has written an up-to-date student-oriented textbook with the aim of making the learning of advanced statistics and using SPSS as painless as possible. 〈P〉While other books either concentrate on statistical theory or on the functions of the popular computer program SPSS, Andy Field integrates the two to provide the student with a thorough grounding in statistics through learning to use SPSS. He provides a detailed, but highly accessible, guide to using SPSS for more complex statistical tests. There are illustrations of dialogue boxes throughout, and each chapter concludes with a set of exercises and descriptions. The book includes a CD-ROM with SPSS datasets and the author provides a website for further help and upda
    Note: Literaturverz. S. 809 - 815 , ***Hier auch später erschienene, unveränderte Nachdrucke.***Unchanged reprints that were published later are included here.***
    URL: Cover
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  • 4
    ISBN: 9781405184021 , 1405184027
    Language: English
    Pages: XIII, 215 S , Ill., graph. Darst , 25 cm
    Edition: 4. ed.
    DDC: 005.5/5
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    Keywords: SPSS for Windows ; SPSS Computer file ; Social sciences Statistical methods ; Computer programs ; Statistics Computer programs ; SPSS für WINDOWS
    Description / Table of Contents: Literaturangaben
    Note: Spiralheftung
    URL: Cover
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  • 5
    Book
    Book
    Los Angeles [u.a.] : Sage Publ.
    ISBN: 9781412949644
    Language: English
    Pages: XIII, 98 S. , Ill., graph. Darst.
    Series Statement: Quantitative applications in the social sciences 153
    Series Statement: Sage University papers / Quantitative applications in the social sciences
    DDC: 519.3
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    Keywords: Social sciences Statistical methods ; Game theory ; Computer simulation ; Agent ; Computersimulation ; Sozialwissenschaften ; Mehragentensystem ; Modellierung ; Computersimulation
    Note: Literaturverz. S. 81 - 90
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  • 6
    Book
    Book
    New York, NY [u.a.] : Lawrence Erlbaum Associates
    ISBN: 9780805862676
    Language: English
    Pages: XII, 270 S. , graph. Darst.
    Additional Material: 1 CD-ROM (12 cm)
    Edition: 3. ed.
    DDC: 005.5/5
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    Keywords: SPSS for Windows ; SPSS (Computer file) ; Social sciences Statistical methods ; Computer programs ; SPSS for Windows ; SPSS (Computer file) ; Social sciences Statistical methods ; Computer programs ; SPSS für WINDOWS
    Abstract: Introduction and review of basic statistics with SPSS variables -- Research hypotheses and research questions -- A sample research problem : the modified high school and beyond study -- Research questions for the modified HSB study -- Frequency distributions -- Levels of measurement -- Descriptive statistics -- Conclusions about measurement and the use of statistics -- The normal curve -- Data coding and exploratory analysis (EDA) -- Rules for data coding -- Exploratory data analysis (EDA) -- Statistical assumptions -- Checking for errors and assumptions with ordinal and scale variables -- Using tables and figures for EDA -- Transforming variables -- Several measures of reliability -- Problem 4.1: Cronbachs alpha for the motivation scale -- Problems 4.2 & 4.3: Cronbachs alpha for the competence and pleasure scales -- Problem 4.4: test-retest reliability using correlation -- Problem 4.5: Cohens kappa with nominal data -- Exploratory factor analysis and principal components analysis -- Problem 5.1: factor analysis on math attitude variables -- Problem 5.2: principal components analysis on achievement variables -- Selecting and interpreting inferential statistics -- Selection of inferential statistics -- The general linear model -- Interpreting the results of a statistical test -- An example of how to select and interpret inferential statistics -- Review of writing about your outputs -- Multiple regression -- Problem 6.1: using the simultaneous method to compute multiple regression -- Problem 6.2: simultaneous regression correcting multicollinearity -- Problem 6.3: hierarchical multiple linear regression -- Logistic regression and discriminant analysis -- Problem 7.1: logistic regression -- Problem 7.2: hierarchical logistic regression -- Problem 7.3: discriminant analysis (da) -- Factorial anova and ancova -- Problem 8.1: factorial (2-way) anova -- Problem 8.2: post hoc analysis of a significant interaction -- Problem 8.3: analysis of covariance (ancova) -- Repeated measures and mixed anovas -- The product data set -- Problem 9.1: repeated measures anova -- Problem 9.2: the friedman nonparametric test for several related samples -- Problem 9.3: mixed anova -- Multivariate analysis of variance -- Problem 10.1: GLM single-factor multivariate analysis of variance -- Problem 10.2: GLM two-factor multivariate analysis of variance -- Problem 10.3: mixed manova -- Problem 10.4: canonical correlation -- Multilevel linear modeling/hierarchical linear modeling -- Problem 11.1: unconditional level 1 repeated measures model -- Problem 11.2: repeated measures with level 2 predictor -- Problem 11.3: unconditional individuals-nested-in-schools model -- Problem 11.4: conditional individuals-nested-in-schools model with level 1 covariate
    Description / Table of Contents: Introduction and review of basic statistics with SPSS variables -- Research hypotheses and research questions -- A sample research problem : the modified high school and beyond study -- Research questions for the modified HSB study -- Frequency distributions -- Levels of measurement -- Descriptive statistics -- Conclusions about measurement and the use of statistics -- The normal curve -- Data coding and exploratory analysis (EDA) -- Rules for data coding -- Exploratory data analysis (EDA) -- Statistical assumptions -- Checking for errors and assumptions with ordinal and scale variables -- Using tables and figures for EDA -- Transforming variables -- Several measures of reliability -- Problem 4.1: Cronbachs alpha for the motivation scale -- Problems 4.2 & 4.3: Cronbachs alpha for the competence and pleasure scales -- Problem 4.4: test-retest reliability using correlation -- Problem 4.5: Cohens kappa with nominal data -- Exploratory factor analysis and principal components analysis -- Problem 5.1: factor analysis on math attitude variables -- Problem 5.2: principal components analysis on achievement variables -- Selecting and interpreting inferential statistics -- Selection of inferential statistics -- The general linear model -- Interpreting the results of a statistical test -- An example of how to select and interpret inferential statistics -- Review of writing about your outputs -- Multiple regression -- Problem 6.1: using the simultaneous method to compute multiple regression -- Problem 6.2: simultaneous regression correcting multicollinearity -- Problem 6.3: hierarchical multiple linear regression -- Logistic regression and discriminant analysis -- Problem 7.1: logistic regression -- Problem 7.2: hierarchical logistic regression -- Problem 7.3: discriminant analysis (da) -- Factorial anova and ancova -- Problem 8.1: factorial (2-way) anova -- Problem 8.2: post hoc analysis of a significant interaction -- Problem 8.3: analysis of covariance (ancova) -- Repeated measures and mixed anovas -- The product data set -- Problem 9.1: repeated measures anova -- Problem 9.2: the friedman nonparametric test for several related samples -- Problem 9.3: mixed anova -- Multivariate analysis of variance -- Problem 10.1: GLM single-factor multivariate analysis of variance -- Problem 10.2: GLM two-factor multivariate analysis of variance -- Problem 10.3: mixed manova -- Problem 10.4: canonical correlation -- Multilevel linear modeling/hierarchical linear modeling -- Problem 11.1: unconditional level 1 repeated measures model -- Problem 11.2: repeated measures with level 2 predictor -- Problem 11.3: unconditional individuals-nested-in-schools model -- Problem 11.4: conditional individuals-nested-in-schools model with level 1 covariate
    Note: Includes bibliographical references and index
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  • 7
    ISBN: 9780805860276
    Language: English
    Pages: XIII, 217 S. , Ill., graph. Darst.
    Additional Material: 1 CD-ROM (12 cm)
    Edition: 3. ed
    DDC: 300.285555
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    Keywords: SPSS for Windows ; SPSS (Computer file) ; Social sciences Statistical methods ; Computer programs
    Note: 1. Aufl. u.d.T.: SPSS for windows
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