Clinical Data Analysis on a Pocket Calculator〈Second Edition 2016〉 : Understanding the Scientific Methods of Statistical Reasoning and Hypothesis Testing(2)

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Clinical Data Analysis on a Pocket Calculator〈Second Edition 2016〉 : Understanding the Scientific Methods of Statistical Reasoning and Hypothesis Testing(2)

  • 著者名:Cleophas, Ton J./Zwinderman, Aeilko H.
  • 価格 ¥17,201 (本体¥15,638)
  • Springer(2016/01/22発売)
  • ポイント 156pt (実際に付与されるポイントはご注文内容確認画面でご確認下さい)
  • 言語:ENG
  • ISBN:9783319271033
  • eISBN:9783319271040

ファイル: /

Description

Inmedical and health care the scientific method is little used, and statisticalsoftware programs are experienced as black box programs producing lots ofp-values, but little answers to scientific questions. The pocket calculatoranalyses appears to be, particularly, appreciated, because they enable medicaland health professionals and students for the first time to understand thescientific methods of statistical reasoning and hypothesis testing. So much so,that it can start something like a new dimension in their professional world. Inaddition, anumber of statistical methods like power calculations and required sample sizecalculations can be performed more easily on a pocket calculator, than using asoftware program. Also, there are some specific advantages of thepocket calculator method. You better understand what you are doing. The pocketcalculator works faster, because far less steps have to be taken, averages canbe used. The current nonmathematical book is complementary to thenonmathematical "SPSS for Starters and 2nd Levelers" (Springer HeidelbergGermany 2015, from the same authors), and can very well be used as its dailycompanion.

Table of Contents

Preface.-I Continuous Outcome Data.- Data Spread, Standard Deviations.- Data Summaries:Histograms, Wide and Narrow Gaussian Curves.- Null-Hypothesis Testing withGraphs.- Null-Hypothesis Testing with the T-table.- One-Sample Continuous Data (One-SampleT-Test, One-Sample Wilcoxon.- Paired Continuous Data (Paired T-Test, Two-SampleWilcoxon Signed Rank Test).- Unpaired Continuous Data (Unpaired T-Test,Mann-Whitney).- Linear Regression (Regression Coefficients, CorrelationCoefficients, and their   StandardErrors).- Kendall-Tau Regressionfor Ordinal Data.- Paired Continuous Data, Analysis with Help of CorrelationCoefficients.- Power Equations.- Sample Size Calculations.- ConfidenceIntervals.- Equivalence Testing instead of Null-Hypothesis Testing.- NoninferiorityTesting instead of Null-Hypothesis Testing.- Superiority Testing instead ofNull-Hypothesis Testing.- Missing Data Imputation.- Bonferroni  Adjustments.- Unpaired Analysis of Variance(ANOVA).- Paired Analysis of Variance (ANOVA).-VariabilityAnalysis for One or Two Samples.- 22 Variability Analysis for Three or More Samples.-Confounding.- Propensity Score and Propensity Score Matching for MultipleConfounders.- Interaction.- Accuracy and Reliability Assessments.- Robust Testsfor Imperfect Data.- Non-linear Modeling on a Pocket Calculator.- FuzzyModeling for Imprecise and Incomplete Data.-Bhattacharya Modeling for Unmasking Hidden Gaussian Curves.- Item ResponseModeling instead of Classical Linear Analysis of Questionnaires.- Meta-Analysis.- Goodness of Fit Tests for Identifying Nonnormal Data.-Non-Parametric Tests for Three or More Samples (Friedman and Kruskal-Wallis).- IIBinary Outcome Data.-Data Spread: StandardDeviation, One Sample Z- Test, One Sample Binomial Test.- Z-Tests.- Phi Testsfor Nominal Data.- 38 Chi-Square Tests.-Fisher Exact Tests Convenient for Small Samples.- Confounding.- Interaction.- Chi-squareTests for Large Cross-Tabs.- Logarithmic Transformations, a Great Help to StatisticalAnalyses .- Odds Ratios, a Short-Cut for AnalyzingCross-Tabs.- Log odds, the Basis of Logistic Regression.- Log Likelihood Ratio Testsfor the Best Precision.- Hierarchical Loglinear Models for Higher Order Cross-Tabs.- McNemar Tests for Paired Cross-Tabs.-McNemar Odds Ratios.- Power Equations.- Sample Size Calculations.- AccuracyAssessments.- Reliability Assessments.- Unmasking Fudged Data.- Markov Modelingfor Predictions outside the Range of Observations.-  Binary Partitioning with CART (Classificationand Regression Tree) Methods.- Meta-Analysis.- Physicians' Daily Life and theScientific Method.- Incident Analysis and the Scientific Method.- Cochran Testsfor Large Paired Cross-Tabs.-Index.         

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