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If you have an R data.table that has missing values, how do you replace all of them with say, the value 0? E.g.

aa = data.table(V1=1:10,V2=c(1,2,2,3,3,3,4,4,4,4))
bb = data.table(V1=3:6,X=letters[1:4])
setkey(aa,V1)
setkey(bb,V1)
tt = bb[aa]

    V1  X V2
 1:  1 NA  1
 2:  2 NA  2
 3:  3  a  2
 4:  4  b  3
 5:  5  c  3
 6:  6  d  3
 7:  7 NA  4
 8:  8 NA  4
 9:  9 NA  4
10: 10 NA  4

Any way to do this in one line? If it were just a matrix, you could just do:

tt[is.na(tt)] = 0
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4  
tt[is.na(tt)] = 0 works for me. –  thelatemail Dec 12 '13 at 5:22
    
You're right, I don't know where I was looking. Feel free to answer I'll accept it. –  FBC Dec 12 '13 at 5:25
1  
+1 for the nice question. But the answer you've chosen is not the idiomatic way. I'd advice you to reconsider. –  Arun Dec 12 '13 at 14:07
    
thinking of how I'd want this to work, tt[is.na(tt), .SD := 0] comes to mind –  eddi Dec 12 '13 at 20:44
    
@eddi, Hm, that seems nice and probably not that hard to implement... will give it some thought. –  Arun Dec 13 '13 at 0:08

2 Answers 2

up vote 4 down vote accepted

is.na (being a primitive) has relatively very less overhead and is usually quite fast. So, you can just loop through the columns and use set to replace NA with0`.

Using <- to assign will result in a copy of all the columns and this is not the idiomatic way using data.table.

First I'll illustrate as to how to do it and then show how slow this can get on huge data (due to the copy):

One way to do this efficiently:

for (i in seq_along(tt)) set(tt, i=which(is.na(tt[[i]])), j=i, value=0)

You'll get a warning here that "0" is being coerced to character to match the type of column. You can ignore it.

Why shouldn't you use <- here:

# by reference - idiomatic way
set.seed(45)
tt <- data.table(matrix(sample(c(NA, rnorm(10)), 1e7*3, TRUE), ncol=3))
tracemem(tt)
# modifies value by reference - no copy
system.time({
for (i in seq_along(tt)) 
    set(tt, i=which(is.na(tt[[i]])), j=i, value=0)
})
#   user  system elapsed 
#  0.284   0.083   0.386 

# by copy - NOT the idiomatic way
set.seed(45)
tt <- data.table(matrix(sample(c(NA, rnorm(10)), 1e7*3, TRUE), ncol=3))
tracemem(tt)
# makes copy
system.time({tt[is.na(tt)] <- 0})
# a bunch of "tracemem" output showing the copies being made
#   user  system elapsed 
#  4.110   0.976   5.187 
share|improve this answer
    
Great answer. Not strictly required, but any way to do this without a for loop, e.g. using lapply? Or does that make copies of the columns too? –  FBC Dec 12 '13 at 18:50
    
I'm not getting anywhere near the time increase that you are seeing, regardless of whether I use tracemem(tt) before each run the respective elapsed times are about 0.34 and 0.42. <- is slower, but nowhere near as slow as your benchmarks. –  thelatemail Dec 12 '13 at 22:57
    
@thelatemail, I just checked again. It's 0.386 vs 5.05 sec. –  Arun Dec 12 '13 at 23:09
    
did you generate tt again before to run system.time? The first one modifies it by reference... –  Arun Dec 12 '13 at 23:11
    
I've been using tt2 <- tt <- data.table(... and running the first for code block on tt and the second <- code on tt2 –  thelatemail Dec 12 '13 at 23:22

Nothing unusual here:

tt[is.na(tt)] = 0

..will work.

This is somewhat confusing however given that:

tt[is.na(tt)]

...currently returns:

Error in [.data.table(tt, is.na(tt)) : i is invalid type (matrix). Perhaps in future a 2 column matrix could return a list of elements of DT (in the spirit of A[B] in FAQ 2.14). Please let datatable-help know if you'd like this, or add your comments to FR #1611.

share|improve this answer
    
Confusing indeed. –  Ananda Mahto Dec 12 '13 at 5:53
    
Yes, I think what happened was that I tried it and got that error and was confused, didn't think of actually trying to set it to zero directly. Thanks! –  FBC Dec 12 '13 at 5:58
    
this'd not be the idiomatic way as this'll make a copy of all the columns. –  Arun Dec 12 '13 at 13:51

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