41

I'm trying to manipulate a number of data.tables in similar ways, and would like to write a function to accomplish this. I would like to pass in a parameter containing a list of columns that would have the operations performed. This works fine when the vector declaration of columns is the left hand side of the := operator, but not if it is declared earlier (or passed into the function). The follow code shows the issue.

dt = data.table(a = letters, b = 1:2, c=1:13)
colsToDelete = c('b', 'c')
dt[,colsToDelete := NULL] # doesn't work but I don't understand why not.
dt[,c('b', 'c') := NULL] # works fine, but doesn't allow passing in of columns

The error is "Adding new column 'colsToDelete' then assigning NULL (deleting it)." So clearly, it's interpreting 'colsToDelete' as a new column name.

The same issue occurs when doing something along these lines

dt[, colNames := lapply(.SD, adjustValue, y=factor), .SDcols = colNames]

I new to R, but rather more experienced with some other languages, so this may be a silly question.

0
58

It's basically because we allow symbols on LHS of := to add new columns, for convenience: ex: DT[, col := val]. So, in order to distinguish col itself being the name from whatever is stored in col being the column names, we check if the LHS is a name or an expression.

If it's a name, it adds the column with the name as such on the LHS, and if expression, then it gets evaluated.

DT[, col := val] # col is the column name.

DT[, (col) := val]  # col gets evaluated and replaced with its value
DT[, c(col) := val] # same as above

The preferred idiom is: dt[, (colsToDelete) := NULL]

HTH

14

I am surprised no answer provided uses the set() function.

set(DT, , colsToDelete, NULL)

This should be the easiest.

2
  • 1
    two commas in a row? Aug 10 '19 at 20:24
  • 6
    @wolfsatthedoor The empty argument is the i argument, which refers to rows. As it's omitted, it indicates that all rows are to be updated.
    – Lyngbakr
    Aug 13 '19 at 14:21
11

To extend on previous answer, you can delete columns by reference doing:

# delete columns 10 to 15
dt[ , (10:15) := NULL ]

or

# delete columns 3, 5 and 10 to 15
dt[ , (c(3,5,10:15)) := NULL ]
1
  • 2
    to add on this, you can also do dt[ , -(10:15) ] or dt[ , -c(3,5,10:15)]
    – Alice
    Apr 10 '18 at 17:39
0

This code did the job for me. you need to have the position of the columns to be deleted e.g., posvec as mentioned in the ?set

j: Column name(s) (character) or number(s) (integer) to be assigned value when column(s) already exist, and only column name(s) if they are to be created.

DT_removed_slected_col = set(DT, j = posvec, value = NULL)

Also if you want to get the posvec you can try this:

selected_col = c('col_a','col_b',...)

selected_col = unlist(sapply(selected_col, function(x) grep(x,names(DT)))) 

namvec = names(selected_col) #col names

posvec = unname(selected_col) #col positions

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.