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A Training Course in Statistical Analysis of Quality Systems


Summary

This Training Course in Statistical Analysis of Quality Systems is designed to equip participants with the statistical tools and methodologies required to analyze and improve quality systems. The course focuses on data-driven approaches for assessing, controlling, and enhancing quality processes in various organizational contexts.

Participants will learn fundamental statistical concepts, control chart techniques, process capability analysis, and measurement system analysis. The course also covers advanced topics, including root cause analysis, hypothesis testing, and Six Sigma methodologies. Through interactive exercises, case studies, and real-world applications, participants will gain hands-on experience in applying statistical analysis to achieve higher quality standards.

By the end of this course, participants will be prepared to analyze quality systems effectively, identify areas for improvement, and implement data-driven strategies for continuous improvement.

Objectives and target group

Objectives

  • To understand the importance of statistical analysis in quality management.
  • To develop skills in control charts, process capability, and measurement analysis.
  • To apply statistical techniques for root cause analysis and process improvement.
  • To implement Six Sigma methodologies and statistical process control.
  • To use data-driven insights to enhance quality systems and processes.

Target Group

  • Quality assurance and control professionals.
  • Operations and production managers focused on quality improvement.
  • Process engineers and analysts involved in quality data analysis.
  • Team leaders and supervisors responsible for quality systems.
  • Professionals seeking to enhance their skills in statistical analysis for quality management.

Feel free to modify any section of the outline to tailor it to specific organizational needs or industry requirements!

Course Content

  • Introduction to Quality Systems and Statistical Analysis

    • Overview of quality systems and their importance in business
    • The role of statistical analysis in quality management
    • Key terminology and concepts in quality systems analysis
  • Fundamentals of Statistics for Quality Analysis

    • Basic statistical concepts: mean, median, standard deviation, variance
    • Understanding distributions and probability in quality contexts
    • Sampling methods and sample size determination
  • Control Charts and Monitoring Processes

    • Introduction to control charts and their purpose in quality control
    • Types of control charts: X-bar, R, p, and np charts
    • Constructing and interpreting control charts to monitor process stability
  • Process Capability Analysis

    • Understanding process capability and its relevance to quality systems
    • Calculating process capability indices (Cp, Cpk) and interpreting results
    • Comparing process performance to specification limits
  • Measurement System Analysis (MSA)

    • Importance of accuracy and precision in quality measurements
    • Analyzing measurement variability using gage R&R studies
    • Ensuring reliability and consistency in data collection
  • Root Cause Analysis Techniques

    • Using statistical tools to identify and investigate root causes of quality issues
    • Pareto analysis and Fishbone diagrams
    • Applying the 5 Whys technique for effective problem-solving
  • Hypothesis Testing and Inferential Statistics

    • Overview of hypothesis testing in quality analysis
    • Conducting t-tests, chi-square tests, and ANOVA to test assumptions
    • Making data-driven decisions based on statistical inferences
  • Statistical Process Control (SPC) in Quality Systems

    • Understanding SPC as a method for maintaining consistent quality
    • Implementing SPC tools in production and service environments
    • Monitoring and improving processes with real-time data
  • Six Sigma and Quality System Improvement

    • Introduction to Six Sigma methodology and its role in quality management
    • DMAIC (Define, Measure, Analyze, Improve, Control) process
    • Integrating Six Sigma with statistical analysis for continuous improvement
  • Case Studies and Practical Applications

    • Analyzing case studies on statistical analysis in quality systems
    • Group exercises to apply statistical techniques to real-world scenarios
    • Developing a data-driven quality improvement plan

Course Date

2024-12-23

2025-03-24

2025-06-23

2025-09-22

Course Cost

Note / Price varies according to the selected city

Members NO. : 1
£3800 / Member

Members NO. : 2 - 3
£3040 / Member

Members NO. : + 3
£2356 / Member

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