Learning Objectives
5 objectives- Understand the fundamental role and concepts of biostatistics in public health research.
- Apply descriptive and inferential statistical methods to analyze public health data.
- Interpret and conduct hypothesis testing, confidence intervals, and regression analyses.
- Evaluate epidemiological study designs and sampling techniques relevant to public health.
- Utilize advanced statistical methods such as survival analysis and meta-analysis in public health contexts.
Content Outline
PreviewUnit 1620 - Biostatistics for Public Health
1. Introduction to Biostatistics
- Role of biostatistics in public health research and practice
- Basic statistical concepts: populations, samples, parameters, statistics
- Types of data: qualitative vs quantitative, nominal, ordinal, interval, ratio
- Importance of statistical analysis in decision-making and policy in public health
2. Descriptive Statistics
2.1 Measures of Central Tendency
- Mean, median, mode: definitions and when to use each
- Calculations and interpretation
2.2 Measures of Variability
- Range, variance, standard deviation: definitions and computation
- Understanding data spread and dispersion
2.3 Graphical Representations
- Histograms, bar charts, pie charts
- Box plots and stem-and-leaf plots
- Scatterplots for bivariate data
3. Probability and Probability Distributions
3.1 Fundamentals of Probability Theory
- Basic probability rules and concepts
- Conditional probability and independence
3.2 Probability Distributions
- Binomial distribution: assumptions and applications
- Normal distribution: properties and standard normal curve
- Poisson distribution: characteristics and use cases
3.3 Applications in Public Health
- Modeling disease occurrence and risk
- Decision-making under uncertainty
4. Confidence Intervals
- Concept and interpretation of confidence intervals
- Calculating confidence intervals for means and proportions
- Confidence intervals for differences between means
- Factors affecting width of confidence intervals
5. Hypothesis Testing
5.1 Fundamentals
- Null and alternative hypotheses
- Significance levels (alpha), p-values
- Type I and Type II errors
5.2 Application in Public Health Studies
- One-sample and two-sample tests
- Tests for proportions and means
- Using hypothesis testing to evaluate interventions
6. Chi-Square Tests
- Overview of categorical data analysis
- Chi-square test for independence
- Chi-square goodness-of-fit test
- Assumptions and interpretation
- Applications in public health research
7. Correlation and Regression Analysis
7.1 Correlation
- Pearson correlation coefficient: calculation and interpretation
- Limitations of correlation
7.2 Regression Analysis
- Simple linear regression: model, assumptions, interpretation
- Multiple regression: introduction and applications
- Using regression for prediction and controlling confounders
8. Epidemiological Study Designs
- Cross-sectional studies: characteristics and uses
- Case-control studies: design and strengths/limitations
- Cohort studies: prospective and retrospective
- Experimental studies: randomized controlled trials
- Choosing appropriate study designs in public health research
9. Sampling Techniques
- Simple random sampling
- Stratified sampling: rationale and implementation
- Cluster sampling
- Systematic sampling
- Importance of sampling for representativeness and validity
10. Survival Analysis
- Introduction to time-to-event data
- Kaplan-Meier survival curves: estimation and interpretation
- Log-rank test for comparing survival curves
- Cox proportional hazards model: concept and applications
- Using survival analysis in public health research
11. Meta-Analysis
- Concept and purpose of meta-analysis
- Steps in conducting a meta-analysis
- Assessing heterogeneity and publication bias
- Importance in synthesizing evidence for public health policy
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