Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I have the following data.table:

DT1 <- data.table(col1 = c(1,2,3,4,5,6,7), col2 = letters[1:7], col3 = rep(TRUE,7))

   col1 col2 col3
1:    1    a TRUE
2:    2    b TRUE
3:    3    c TRUE
4:    4    d TRUE
5:    5    e TRUE
6:    6    f TRUE
7:    7    g TRUE

Then I define:

vec <- c(2,5,6)

And with:

DT1[col1 == vec, col3 := FALSE]

I obtain:

   col1 col2  col3
1:    1    a  TRUE
2:    2    b  TRUE
3:    3    c  TRUE
4:    4    d  TRUE
5:    5    e FALSE
6:    6    f FALSE
7:    7    g  TRUE

I expect col3 of second line to be set to FALSE here, which seems to be not the case.

But for example, this works as I expect:

DT1[vec, col3 := FALSE]

What am I missing?

share|improve this question
2  
DT1[col1%in%vec, col3:=FALSE]. If you just use DT1[col1==vec] will get the warning that longer object length is not a multiple of shorter object length`. –  akrun Aug 12 at 15:53

2 Answers 2

up vote 1 down vote accepted

data.table has the format DT[i,j,by] with i meaning location / where, j meaning select / update / compute / assign and by meaning group by.

So the mistake that you are making here is the following:

In your assignment: DT1[col1==vec, ...] part is equivalent to the following index:

DT1$col1 == vec  

This is like comparing the elements col1 column of DT1 with vec. Since vec has only 3 elements, the elements are rolled over, and due to specific values in your vec and col1, the 5th and 6th elements turns out to be TRUE after rolling.

The correct way to do what you want to do is:

Method 1: (preferred)

DT1[vec, col3 := FALSE]

Method 2: (equivalent to data.frame, but not preferred for data.table)

DT1$col3[vec] <- FALSE

or, the following will also work:

DT1[vec]$col3 <- FALSE

Method 3: Here is another possibility (although slower than the first method):

DT1[col1 %in% vec, col3 := FALSE]

Hope this helps!!

share|improve this answer
    
It is very clear. Thks! –  Colonel Beauvel Aug 13 at 6:58

Use %in% as it returns a logical vector:

> DT1<-data.table(col1=c(1,2,3,4,5,6,7),col2=letters[1:7],col3=rep(TRUE,7))
> vec <- c(2,5,6)
> DT1[col1 %in% vec, col3 := FALSE]
> DT1
   col1 col2  col3
1:    1    a  TRUE
2:    2    b FALSE
3:    3    c  TRUE
4:    4    d  TRUE
5:    5    e FALSE
6:    6    f FALSE
7:    7    g  TRUE
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

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