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Statistics & Experimental Design
SEXD H4000

Description
To provide the student with statistical tools for designing experiments, evaluating processes and predicting responses. This module will also provide the student with quality tools for supporting quality functions within a manufacturing organisation.

Single-factor Experiments: Principles of statistical experimental design: randomisation, replication, blocking. Hypotheses, models and assumptions. One-way Analysis of Variance, by hand and using software.

Two-factor experiments: Main effects and interaction effects. Statistical design and analysis of two-factor experiments. Interpreting ANOVA tables and interaction plots.

Multi-factor experiments: Fractional factorial experiments. Curvature. Aliasing. Effects plots. Crossed and nested designs. Fixed and random factors. Statistical power and sample size.

Regression and Association: Prediction intervals and confidence intervals in regression, with application in reliability or elsewhere. Hypotheses testing in regression. Curvilinear and multiple regression. Selection of variables. Categorical data analysis: contingency tables.

Process Capability and SPC: Process capability analysis: statistics for assessing centrality, normality, stability, capability and performance. Process control: construction of SPC charts for variables and attributes. Corrective, preventive and remedial action.


ECTS credits
5

Teaching Language
English

Exam Language
English

Support Materials Language
English

Basic Learning Outcomes

Course categorized

Managing Entity (faculty)