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Timeline Process
Data Collection
Gather clinical trial data from patient records, treatment outcomes, and demographic information, ensuring data accuracy and completeness.
Data Cleaning and Preparation
Clean the data by handling missing values, addressing inconsistencies, and standardizing formats to prepare it for thorough analysis.
Descriptive Statistics
Calculate key statistics, such as mean, median, and standard deviation, to summarize the data and understand basic trends and distributions.
Hypothesis Testing
Conduct hypothesis testing to evaluate the effectiveness of treatments, using methods like t-tests or ANOVA to compare outcomes between groups.
Advanced Modeling
Apply statistical models such as regression analysis, survival analysis, or mixed models to assess the relationship between treatments and outcomes.
Results Interpretation
Interpret the analysis results to determine the clinical significance of findings and whether the treatment had a statistically significant effect.
Reporting and Recommendations
Compile a detailed report that includes key findings, statistical interpretations, and recommendations for clinical practice or further research.
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