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PREFACE
Basic Statistical Tools for Improving Quality is intended for business people and non-business people alike who do not possess a great amount of mathematical training or technical knowledge about quality control, statistics, six sigma, or process control theory. Without relying on mathematical theorems, you will learn helpful quality management techniques through common sense explanation, graphical illustration and various examples of processes from different industries. Unlike most other books written about quality management, you will be learning by doing. Every time we introduce a new tool for improving quality, we will practice it on a real example. Programming skills are not necessary because we will implement a free menu-based and user-friendly software program that was designed with the basic tools and techniques for improving quality.
If you bought this book, you are probably familiar with some kind of production process. By process, we can mean a traditional manufacturing process such as goes on in a Hyundai Motors automobile assembly plant in Korea, but it can also refer to a supply chain that links a Maple tree seedling from an Oregon plant nursery to a Baltimore garden store. In a service industry, a process can be the stages necessary to provide the customer at McDonald’s with an Egg McMuffin.
All organizations have a critical process and strive hard for improving quality of products and/or services through that process. At the end of each process, there always exists some bit of variation in output. For example, in the chocolate chip cookie manufacturing process, the number of chocolate chips in each cookie varies. This is not an exciting prospect for the customer who opens the cookie box with clear idea of what they want and expect in a chocolate chip cookie: not too many chips, and certainly not too few. But some variation between cookies is inevitable, and these variations are difficult to see during the baking and packaging process.
In order to improve quality, it makes sense to reduce this item-to-item variability when we can. But to know about the variability in the process, we have to measure things, and then figure out how to assess this variability by analyzing the resulting data. This can get complicated, even if we are baking chocolate chip cookies, where it is impractical to count the chips in every baked cookie. This is where statistical process control takes over.
Statistical process control refers to the application of statistical tools to measure things in the process in order to detect whether a change has taken place. In the examples we have discussed, the process aims for consistency, so any change in the process output is usually a bad thing. This book describes and illustrates statistical tools to detect changes in a, process, and it also shows how to implement the idea of continuous improvement into process control.
The tools you can implement are both graphical and analytical. Graphical procedures (charts, diagrams) serve as effective tools to communicate intricate details about a complex or dynamic process without having to go into statistical or mathematical detail. Graphical tools are helpful, but not always convincing. Analytical tools, on the other hand, can be more powerful but are more challenging to learn. While we spare the reader of any unnecessary detail about the mathematical machinery of the analytical tools, we certainly do not promote an overly simple “push that button” mentality in this book. That won’t work for the unique problems encountered when applying these tools and techniques to your workplace. The analytical tools need a better level of understanding.
To be an effective process manager, you don’t have to be an expert in statistics. You do need to be knowledgeable about the process you are working on, and you need to be determined enough to learn how these simple tools can be used to understand and control this process. This is the kind of expert that we hope you will become after you have finished reading this book. To avoid unnecessary statistical formulas, we will focus on concepts and show you how to use the free eZ SPC software to understand how data is analyzed. We will learn through examples.
Here are some key skills you should pick up after reading Basic Statistical Tools for Improving Quality:
Examples are featured throughout the book and easy to find. Just look for a gray box followed by the example text. Here is an example from the first chapter:
Example 1–8: General Hospital Emergency Center
Hospitals must always be at the forefront of process improvement. Patient processing at an emergency reception has evolved continuously over…. The example always ends with...
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