What is Considered to Be a "Weak" Correlation? (2024)

In statistics, we’re often interested in understanding how two variables are related to each other. For example, we might want to know:

  • What is the relationship between the number of hours a student studies and the exam score they receive?
  • What is the relationship between the temperature outside and the number of ice cream bars sold by a food truck?
  • What is the relationship between dollars spent on advertising and total income earned for a certain company?

In each scenario, we’re interested in understanding the relationship between two variables.

One of the most common ways to quantify a relationship between two variables is to use the Pearson correlation coefficient, which is a measure of the linear association between two variables.

It always takes on a value between -1 and 1 where:

  • -1 indicates a perfectly negative linear correlation between two variables
  • 0 indicates no linear correlation between two variables
  • 1 indicates a perfectly positive linear correlation between two variables

Often denoted asr, this number helps us understand the strength of the relationship between two variables. The closer ris to zero, the weaker the relationship between the two variables.

It’s important to note that two variables could have a weak positivecorrelation or a weak negative correlation.

Weak positive correlation: When one variable increases, the other variable tends to increase as well, but in a weak or unreliable manner.

What is Considered to Be a "Weak" Correlation? (1)

Weak negative correlation: When one variable increases, the other variable tends to decrease, but in a weak or unreliable manner.

What is Considered to Be a "Weak" Correlation? (2)

The following table shows the rule of thumb for interpreting the strength of the relationship between two variables based on the value ofr:

Absolute value ofrStrength of relationship
r < 0.25No relationship
0.25 < r < 0.5Weak relationship
0.5 < r < 0.75Moderate relationship
r > 0.75Strong relationship

The correlation between two variables is considered to be weak if the absolute value of ris between 0.25 and 0.5.

However, the definition of a “weak” correlation can vary from one field to the next.

Medical

In medical fields the definition of a “weak” relationship is often much lower. If the relationship between taking a certain drug and the reduction in heart attacks is r = 0.2, this might be considered “no relationship” in other fields, but in medicine it’s significant enough that it would be worth taking the drug to reduce the chances of having a heart attack.

Human Resources

In a field like human resources, lower correlations are also used more often. For example, the correlation between college GPA and job performance has been shown to be about r= 0.16. This is fairly low, but it’s large enough that it’s something a company would at least look at during an interview process.

Technology

In technology fields, the correlation between variables might need to be much higher to even be considered “weak.” For example, if a company creates a self-driving car and the correlation between the car’s turning decisions and the probability of avoiding a wreck is r = 0.95, this may be considered a “weak” correlation and is likely too low for the car to be considered safe since the result of making the wrong decision can be fatal.

Using Scatterplots to Visualize Correlations

When you calculate the correlation coefficient between two variables, it’s useful to create a scatterplot to visualize the correlation as well.

In particular, scatterplots offer two benefits:

1. Scatterplots can help you identify outliers that affect the correlation coefficient.

One extreme outlier can have a large impact on the correlation coefficient. Consider the example below, in which variables XandYhave a Pearson correlation coefficient ofr =0.91.

What is Considered to Be a "Weak" Correlation? (3)

Now imagine that the we modify the first data point to be much larger. The correlation coefficient suddenly becomesr = 0.29.

What is Considered to Be a "Weak" Correlation? (4)

This single data point causes the correlation coefficient to change from a strong positive relationship to a weak positive relationship.

(2) Scatterplots can help you identify nonlinear relationships between variables.

A Pearson correlation coefficient merely tells us if two variables are linearly related. But even if a Pearson correlation coefficient tells us that two variables are uncorrelated, they could still have some type of nonlinear relationship.

For example, consider the scatterplot below between variables X and Y, in which their correlation is r = 0.00.

What is Considered to Be a "Weak" Correlation? (5)

The variables clearly have no linear relationship, but theydo have a nonlinear relationship: The y values are simply the x values squared.

A correlation coefficient by itself couldn’t pick up on this relationship, but a scatterplot could.

Conclusion

In summary:

1. As a rule of thumb, a correlation coefficient between 0.25 and 0.5 is considered to be a “weak” correlation between two variables.

2. This rule of thumb can vary from field to field. For example, a much lower correlation could be considered weak in a medical field compared to a technology field. Be sure to use subject matter expertise when deciding what is considered to be a weak correlation.

3.When using a correlation coefficient to describe the relationship between two variables, it’s useful to create a scatterplot as well so you can identify any outliers in the dataset along with a potential nonlinear relationship.

Additional Resources

What is Considered to Be a “Strong” Correlation?
Correlation Matrix Calculator
Correlation vs. Association: What’s the Difference?

What is Considered to Be a "Weak" Correlation? (2024)

FAQs

What is Considered to Be a "Weak" Correlation? ›

If we wish to label the strength of the association, for absolute values of r, 0-0.19 is regarded as very weak, 0.2-0.39 as weak, 0.40-0.59 as moderate, 0.6-0.79 as strong and 0.8-1 as very strong correlation, but these are rather arbitrary limits, and the context of the results should be considered.

What is considered weak correlation? ›

Two variables can have a strong relationship but a weak correlation coefficient if the relationship between them is nonlinear. When the value of ρ is close to zero, generally between -0.1 and +0.1, the variables are said to have no linear relationship (or a very weak linear relationship).

Is 0.2 a weak correlation? ›

The correlation coefficient of 0.2 before excluding outliers is considered as negligible correlation while 0.3 after excluding outliers may be interpreted as weak positive correlation (Table 1).

Is a .4 correlation weak? ›

correlations between 0.20-0.39 as weak, correlations 0.40-0.59 as moderate, correlations 0.60-0.79 as strong, and. correlations >0.80 as very strong.

Is .05 a weak correlation? ›

Correlation coefficients whose magnitude are between 0.3 and 0.5 indicate variables which have a low correlation. Correlation coefficients whose magnitude are less than 0.3 have little if any (linear) correlation.

Is 0.1 strong or weak correlation? ›

Coefficient of Correlation
Value of rStrength of relationship
-1.0 to -0.5 or 1.0 to 0.5Strong
-0.5 to -0.3 or 0.3 to 0.5Moderate
-0.3 to -0.1 or 0.1 to 0.3Weak
-0.1 to 0.1None or very weak

Is 0.1 a weak correlation? ›

Positive correlation is measured on a 0.1 to 1.0 scale. Weak positive correlation would be in the range of 0.1 to 0.3, moderate positive correlation from 0.3 to 0.5, and strong positive correlation from 0.5 to 1.0.

Is .10 a weak correlation? ›

A correlation coefficient of . 10 is thought to represent a weak or small association; a correlation coefficient of . 30 is considered a moderate correlation; and a correlation coefficient of . 50 or larger is thought to represent a strong or large correlation.

Is 0.80 a weak correlation? ›

r = 0.60 – 0.79 is considered a strong relationship. r = 0.80 – 1 is considered a very strong relationship.

Is 0.09 a weak correlation? ›

An r-value of . 09 in terms of correlation indicates a weak positive correlation between the two variables. The correlation coefficient, denoted by r, ranges between -1 and 1, with -1 indicating a perfect negative correlation, 0 indicating no correlation, and 1 indicating a perfect positive correlation.

Is .2 a weak positive correlation? ›

Values between 0 and 0.3 (0 and −0.3) indicate a weak positive (negative) linear relationship through a shaky linear rule. Values between 0.3 and 0.7 (0.3 and −0.7) indicate a moderate positive (negative) linear relationship through a fuzzy-firm linear rule.

Is a correlation of .2 strong? ›

With |r| >0.7, the data points are said to have strong correlation. |r|=1 indicates a perfect correlation. With |r|< 0.3, the data points are said to be weakly correlated. A positive r indicates an uphill correlation while negative r indicates downhill correlation.

Is 0.44 a strong correlation? ›

For example, The correlation value of absolute 'r'= 0.44, would be a moderate positive correlation.

Is 0.07 a weak correlation coefficient? ›

Correlation coefficient values below 0.3 are considered to be weak; 0.3-0.7 are moderate; >0.7 are strong.

Is 0.07 a weak correlation? ›

If a statistical correlation is between 0.05 to 0.10 , the interpretation is weak. 0.10 - 0.15 is Moderate. & If the p-value is < the significance level 0.05 , we reject the null hypothesis in favour of the alternative.

Is 0.03 a weak correlation? ›

For correlation (r) = 0.03: The strength is weak. As the correlation is far away from 1, which shows that the correlation is not a strong correlation. The direction of the correlation is positive as the sign before the correlation is positive.

Is 0.75 a weak correlation? ›

r values ranging from 0.50 to 0.75 or -0.50 to -0.75 indicate moderate to good correlation, and r values from 0.75 to 1 or from -0.75 to -1 point to very good to excellent correlation between the variables (1).

Is .2 a strong correlation? ›

If we wish to label the strength of the association, for absolute values of r, 0-0.19 is regarded as very weak, 0.2-0.39 as weak, 0.40-0.59 as moderate, 0.6-0.79 as strong and 0.8-1 as very strong correlation, but these are rather arbitrary limits, and the context of the results should be considered.

Is 0.3 a weak correlation? ›

Values between 0 and 0.3 (0 and −0.3) indicate a weak positive (negative) linear relationship through a shaky linear rule. Values between 0.3 and 0.7 (0.3 and −0.7) indicate a moderate positive (negative) linear relationship through a fuzzy-firm linear rule.

Is 0.8 a weak correlation? ›

Correlation Coefficient = 0.8: A fairly strong positive relationship. Correlation Coefficient = 0.6: A moderate positive relationship.

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