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Describe the formal, quantitative method for identifying outliers in a dataset using zz scores. In your description, specify the exact thresholds used to classify a score as an outlier, and explain what these thresholds represent in terms of the dataset's standard deviation and mean.

Question: Describe the formal, quantitative method for identifying outliers in a dataset using zz scores. In your description, specify the exact thresholds used to classify a score as an outlier, and explain what these thresholds represent in terms of the dataset's standard deviation and mean.

Sample answer: Outliers can be formally and quantitatively identified by converting raw scores into zz scores. Under this standard method, outliers are defined as scores that fall more than three standard deviations away from the mean. Specifically, in standardized terms, any score with a zz score strictly less than 3.00-3.00 or strictly greater than +3.00+3.00 is classified as an outlier.

Key points:

  • Identification is based on a formal, quantitative method using zz scores.
  • Outliers are defined as scores more than three standard deviations away from the mean.
  • A score is an outlier if its zz score is strictly less than 3.00-3.00.
  • A score is an outlier if its zz score is strictly greater than +3.00+3.00.

Rubric: The answer must recall that: 1) zz scores provide a formal quantitative method. 2) Outliers are defined as scores falling more than three standard deviations from the mean. 3) The specific thresholds are a zz score strictly less than 3.00-3.00 or strictly greater than +3.00+3.00.

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Updated 2026-05-26

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Research Methods in Psychology - 4th American Edition @ KPU

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