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I have a dataset with responses to a Likert item on a 9pt scale. I would like to create a frequency table (and barplot) of the data but some values on the scale never occur in my dataset, so table() removes that value from the frequency table. I would like it instead to present the value with a frequency of 0. That is, given the following dataset

# Assume a 5pt Likert scale for ease of example
data <- c(1, 1, 2, 1, 4, 4, 5)

I would like to get the following frequency table without having to manually insert a column named 3 with the value 0.

1 2 3 4 5 
3 1 0 2 1

I'm new to R, so maybe I've overlooked something basic, but I haven't come across a function or option that gives the desired result.

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up vote 6 down vote accepted

table produces a contingency table, while tabular produces a frequency table that includes zero counts.

tabulate(data)
# [1] 3 1 0 2 1

Another way (if you have integers starting from 1 - but easily modifiable for other cases):

setNames(tabulate(data), 1:max(data))  # to make the output easier to read
# 1 2 3 4 5 
# 3 1 0 2 1 
share|improve this answer
    
Well. Thanks but tabulate is not the universal way to produce frequency tables. It works on positive integers. try, e.g. tabulate (0:1) or tabulate (-50000:1) (guess why is the output identical if the arguments are so very different). Tabulate works on your special case (you happen to have a "Likert" scale starting from 1, and on factors (because levels are coded, by convention, as positive consecutive integers starting from 1). It will not work on character vectors or with zero and negative values. – lebatsnok Nov 12 '15 at 11:55
    
... so while I like my answer to be accepted, I'd actually say that the other answer is more universal. Converting x to factor and then make a one-dimensional contingency table with table will work with all kinds of data while tabulate will only work with some special cases. – lebatsnok Nov 12 '15 at 11:57

EDIT:

tabular produces frequency tables while table produces contingency tables. However, to get zero frequencies in a one-dimensional contingency table as in the above example, the below code still works, of course.


This question provided the missing link. By converting the Likert item to a factor, and explicitly specifying the levels, levels with a frequency of 0 are still counted

data <- factor(data, levels = c(1:5))
table(data)

produces the desired output

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