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Difference between sampling and non-sampling errors?
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Difference between sampling and non-sampling errors?
Sampling Error
“Sampling error is the error that arises in a data collection process as a result of taking a sample from a population rather than using the whole population.
Sampling error is one of two reasons for the difference between an estimate of a population parameter and the true, but unknown, value of the population parameter. The other reason is non-sampling error. Even if a sampling process has no non-sampling errors then estimates from different random samples (of the same size) will vary from sample to sample, and each estimate is likely to be different from the true value of the population parameter.
The sampling error for a given sample is unknown but when the sampling is random, for some estimates (for example, sample mean, sample proportion) theoretical methods may be used to measure the extent of the variation caused by sampling error.”

Non-sampling error:
“Non-sampling error is the error that arises in a data collection process as a result of factors other than taking a sample.
Non-sampling errors have the potential to cause bias in polls, surveys or samples.
There are many different types of non-sampling errors and the names used to describe them are not consistent. Examples of non-sampling errors are generally more useful than using names to describe them.
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Difference between sampling and non-sampling errors?
Sampling and Non-sampling Errors




Introduction:
In the field of statistics, errors can occur during the data collection process. These errors can be broadly categorized into two types: sampling errors and non-sampling errors. Understanding the difference between these two types of errors is crucial in ensuring the accuracy and reliability of statistical analyses.




Sampling Errors:
Sampling errors occur when the sample selected for analysis does not fully represent the population from which it is drawn. These errors are a result of the variability that naturally exists in any sample and can lead to inaccurate conclusions about the population. Some key points about sampling errors include:

- Definition: Sampling errors are discrepancies between sample statistics and population parameters due to the inherent randomness in the selection process.
- Causes: Sampling errors can arise from various factors, such as an inadequate sample size, biased selection methods, non-response bias, or under-coverage of certain population segments.
- Impact: Sampling errors can affect the precision and representativeness of estimates. If the sample is not representative, the conclusions drawn from the analysis may not accurately reflect the characteristics of the population.
- Examples: Examples of sampling errors include selecting a small sample size, using convenience sampling instead of random sampling, or excluding certain population segments from the sampling frame.




Non-sampling Errors:
Non-sampling errors, on the other hand, are errors that occur during the data collection and processing stages that are not related to the sampling process itself. These errors can arise from various sources and may have a significant impact on the accuracy of the final results. Some key points about non-sampling errors include:

- Definition: Non-sampling errors refer to errors that occur during data collection, data entry, coding, processing, or analysis stages, which are not directly related to the sampling process.
- Causes: Non-sampling errors can occur due to human errors, measurement errors, data processing errors, non-response bias, or data manipulation.
- Impact: Non-sampling errors can lead to biased results, incorrect interpretations, and incorrect statistical conclusions. They can introduce systematic errors that affect the entire dataset.
- Examples: Examples of non-sampling errors include data entry mistakes, measurement errors due to faulty instruments, interviewer bias, respondent bias, or errors in data processing algorithms.




Conclusion:
In summary, sampling errors occur due to the inherent variability in the selection process, leading to discrepancies between sample statistics and population parameters. On the other hand, non-sampling errors arise from various sources during data collection, processing, and analysis stages, which are not directly related to the sampling process itself. Both types of errors can significantly impact the accuracy, reliability, and generalizability of statistical analyses. Therefore, it is crucial to identify and minimize these errors to ensure the validity of statistical findings.
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Difference between sampling and non-sampling errors?
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