M7 - Correlation Flashcards

1
Q

Correlation tool for:

Nominal and nominal

Ordinal and ordinal

Interval scaled and interval scaled

A

Phi

Spearman rank

Bravais pearson

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2
Q

Covariance

What

Formula

A

Measures the strength of the relationship between two interval-scaled variables

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3
Q

Whats the problem with covariance measure?

A

Only valid for n data pairs in the pop.

If the n data pairs are a sample out of a larger pop and the equation shall yield an estimate of the cov of the pop, the equation is only correct if x and y are the pop.s’ means
If they are the sample means, it is biased and the values need to be normalized

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4
Q

Values for covariance

A

Cov > 0 hoher positiver zamhang
Cov < 0 hoher negativer zamhang
Cov =0 kein zamhang

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5
Q

Bravais-pearson corr coeff

What

Values

Compared to covariance?

A

Measures the strebgth of the relship. between two interval-scaled vatiables

-1 perfect negative corr
+1 perfect positive corr

Compared to the covariance a comparison of different corr values is simplified since normalization has been carried out

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6
Q

Which corr strengths are worth reporting?

A

1 perfect corr

  1. 85-1 very strong corr
  2. 6-0.85 strong corr
  3. 4-0.6 medium corr
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7
Q

Control variables?

For what reason?

A

Variables test causal relationships

take all other variable into account that could have an
effect on B (at least those that are correlated with A), even if we are not
interested in their effect on B →
“Control variables”.

Reason: no omitted variable bias

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8
Q

Omitted variables

If a and k are not correlated?

If a and k are correlated?

A

Omitted variables

If a and k are not correlated?
–> harmless

If a and k are correlated?

  • -> harmful
  • -> effect of k ln b is wrongly attributed to a due to the corr between a and k
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9
Q

Cramer’s V Phi

A

Strength of the corr. between two/more nominal variables between 0-1

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10
Q

Spearman’s Rho

What?

Used when

A

Rank correlation

Used when two variables are

  • ordinal, but not metric
  • metric, but highly non-linear
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11
Q

Correlation of ordinal variables

Which vatiables?

2 variables, which are ….. but not …..
Which are …. but highly non-…..

A

Correlation of ordinal variables

Which vatiables?

2 variables, which are ORDINAL but not METRIC
Which are METRIC but highly non-LINEAR

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12
Q

Bravais - pearson corr coeff

Is a measure of … between two … variables

Shows the …. of the ….

No …. possible

A

Is a measure of association between two metric variables

Shows the strength of the corr

No forecasting

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13
Q

Regression

Closely related to ….
suited for ….
highly …..

A

Regression

Closely related to correlation
suited for forecasting
highly generalizable

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14
Q

Terminology

Y - …. variable : regress….
X - …. variable : regress….

Model:

Whats the structural and stochastic term?
The structural term accounts for the …. influence.
The stochastic term accounts for the ….. / ….. influence.

A

Terminology

Y - DEPENDENT variable : regressAND
X - INDEPENDENT variable : regressOR

Model: y= b0 + b1x + u

Whats the structural and stochastic term?
The structural term accounts for the SYSTEMATIC influence.
The stochastic term accounts for the NON-SYSTEMATIC/ RANDOM influence.

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15
Q

What effects are covered by The stpchastic term u?

A
  • measuring errors (imprecis measure of y)

- incomplete coverage of the covariates (omitted variable bias)

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16
Q

What do b0 and b1 measure?

b0 measures the …. / ….

b1 measures the …. of the …. …..

Together they are the …..

A

What do b0 and b1 measure?

b0 measures the INTERCEPT/ CONST

b1 measures the SLOPE of the X-Y LINE

Together they are the COEFFICIENTS

17
Q

Effect size b1

A change in … by … goes along with a chsnge in … by …

–> … regression line

A

Effect size b1

A change in Y by deltaX goes along with a chsnge in Y by b1deltaX

–> LINEAR regression line

18
Q

Difference Correlation & Regression

A

Regression can be used for forecasting