I'm trying to loop through the columns names of a dataframe, and evaluate which class is each column.

for (i in columns(df)){

I have tried everything, except the right way.

PS: I'm trying to do in this way because after I have to put different conditions for each class.

  • 5
    sapply(df, class)
    – Sathish
    Commented Apr 18, 2018 at 0:37
  • 1
    for (i in 1:length(df)){ class(df[,i]) }
    – Jorge
    Commented Apr 18, 2018 at 0:44
  • I don't know what operations you want to do later, but are you familiar with dplyr::mutate_if or dplyr::summarise_if sets of functions?
    – hpesoj626
    Commented Apr 18, 2018 at 2:51

2 Answers 2


To answer the exact question and fix the code given, see the example below

df <- iris # data

for (i in colnames(df)){
# [1] "numeric"
# [1] "numeric"
# [1] "numeric"
# [1] "numeric"
# [1] "factor"
  1. you need to used colnames to get the column names of df.
  2. you access each column using df[[i]] if you want to know the class of that. df[i] is of class data.frame.
  • 2
    Is it possible to begin looping on a different column (e.g., column 11) other than the first column?
    – viridius
    Commented Mar 23, 2020 at 17:51

The problem was to loop through the columns of a dataframe, and an additional question was asked about looping through some subset of the dataframe. I used the mtcars dataset because it has more columns of data than the iris dataset. This allowed for a richer example. To loop through some subset of columns, use a numerical value in a for loop rather than using the names of the columns. If columns of interest are regularly spaced then make a vector with the columns of interest. Examples follow:

#Similar to previous answer only with mtcars rather than iris data.
for (i in colnames(df2)){print(paste(i,"  ",class(df2[[i]])))}

#An alternative that is as simple but does not also print the variable names.
for (i in 1:ncol(df2)){print(paste(i,"  ",class(df2[[i]])))}

#With variable names:
for (i in 1:ncol(df2)){print(paste(i,"   ",colnames(df2[i]),"  ",class(df2[[i]])))}

#Now that we are looping numerically one can start in column 3 by:
for (i in 3:ncol(df2)){print(paste(i,"   ",colnames(df2[i]),"  ",class(df2[[i]])))}

#To stop before the last column add a break statement inside an if
for (i in 3:ncol(df2)){
  print(paste(i,"   ",colnames(df2[i]),"  ",class(df2[[i]])))}

#Finally, if you know the columns and they are irregularly spaced try this:
for (i in UseCols){print(paste(i,"   ",colnames(df2[i]),"  ",class(df2[[i]])))}
  • Please provide some explanation to go with this code. Commented Jun 17, 2020 at 17:17

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