MSA: What is ndc: Number of Distinct Characteristics
Bhavya Mangla
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Introduction
Tolerance in any process
Content: ndc - Number of Distinct Categories (MSA 4th Edition)
Objective
Measurement Systems Analysis
When the measurement of any component is conducted, there are two types of variation
Once you go through the article, you will understand the meaning of ndc, what is its purpose, how to effectively interpret it and what action needs to be taken, when it is not meeting the requirement.
Read More: https://bit.ly/VariableAttributeStudy
Definition: MSA: AIAG Manual 4th Edition
Read More: https://bit.ly/CommonSpecialCause
Detailed Information
What is ndc (Number of Distinct Categories)?
The ndc is one of the criteria used by the MSA to determine the sensitivity of the measuring equipment. It indicates the “Number of Distinct Categories” that can be clearly distinguished by the measurement system being used.
Statistically speaking the ndc is the number of non-overlapping 97% confidence intervals that will span the expected part variation. In other words, it represents the number of groups within product or process data that the measurement system can discern.
In layman’s terms, using the graphical representation, the ndc tells the user how many times the GRR curves fit within the part variation curve – the more times the better i.e. the more sensitive your measurement equipment is.
The formula for calculation is ndc = 1.41*(PV/GR&R)
Where:
It is important to understand that GR&R measures only the variability in measurements. It does not reveal anything about their accuracy, which can only be assured through calibration, so if inaccurate (junk!) measurement data goes into the calculation in the first place, the user will get unusable results to work off.
Why it is Important to Analyse the ndc in a Variable MSA Study?
The key objective of any measurement system is to get accurate results so that desired actions can be taken. However, if the results are heavily influenced by the measurement error, the results can not be trusted as good parts may be rejected (Type I Error) or the bad parts be accepted (Type II Error). Example,
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Example: Type I Error (Producer Risk)
Example: Type II Error (Consumer Risk)
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How to interpret the results of the ndc calculation:
The resulting value tells the user if the measurement equipment is sensitive enough. The higher this number, the better chance the measuring instrument has in discerning one part from another, and the guidelines for interpretation are listed below:
Read More: https://bit.ly/BiasLinearity
What Actions should be taken for ndc Scores <5?
To increase ndc you need to increase your part variation (PV), decrease the measurement variation (GR&R), or both.
Read More: https://bit.ly/SPCandMSA
Conclusion:
The purpose of the MSA study is to identify the possible error emanating from the measurement system. Either the error should be within target or the user should have a justified reason to have more measurement error. Whatever decisions are being taken; it should be in context to the measurement system. ?
Read More: https://bit.ly/CommonSpecialCause
References:
MSA AIAG Manual 4th Edition
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