11

I think I already got really good answers on the comments, but I will rephrase the question for future reference.

I am trying to sum by groups using data.table. The problem is that some groups only have NA. For these groups I would like the sum to return NA. However, if there is one group that has one value different that NA, I would like to get the sum of the non-NA values.

A <- data.table(col1= c('A','A','B','B','C','C'),  
                col2= c(NA,NA,2,3,NA,4))

This without adding the argument na.rm = T, group C returns NA when it should return 4.

A[, sum(col2), by = .(col1)]
   col1 V1
1:    A NA
2:    B  5
3:    C NA

However, adding na.rm = T returns 0 in group A when it should return NA.

A[, sum(col2, na.rm = T), by = .(col1)]
   col1 V1
1:    A  0
2:    B  5
3:    C  4

The approach that i like the best is the one that sandipan suggested in the comments, which is akin to the function I wrote below:

ifelse(all(is.na(col2)), NA, sum(col2, na.rm = T)

I created a function to get around it, but I am not sure whether there is an already built-in way to get around this:

sum.na <- function(df){

  if (all(is.na(df))){

    suma <- NA
  }  
  else {    
    suma <- sum(df, na.rm = T)
  }

  return(suma)
}
9
  • 2
    Could you show an example including a data.table? Generally... DT[!is.na(x), sumx := sum(x), by=id] should work, I think.
    – Frank
    Commented Jan 4, 2017 at 17:57
  • 1
    if x is a vector this should work: ifelse(all(is.na(x)), NA, sum(x, na.rm=TRUE)) Commented Jan 4, 2017 at 17:58
  • @sandipan Fyi, there's anyNA(x) equivalent to any(is.na(x)) .. hm, just realized that probably doesn't help here.
    – Frank
    Commented Jan 4, 2017 at 17:59
  • 3
    Thank you for updating your question even though you already had answers. It makes the post much more valuable to future users.
    – Barker
    Commented Jan 4, 2017 at 19:04
  • 1
    Yeah, I also prefer @sandipan 's approach. I just found a variant of it it my own code: function(x) if (all(is.na(x))) x[NA_integer_] else sum(x, na.rm = TRUE) This ensures that the result has the same class as x when it's all NA and also skips the unnecessary ifelse. Btw, dieal, you'll need to use @ before someone's name if you want to "ping" or alert them to your message (as I did by @ sandipan here).
    – Frank
    Commented Jan 4, 2017 at 19:09

2 Answers 2

6

Following the suggestions from other users, I will post the answer to my question. The solution was provided by @sandipan in the comments above:

As noted in the question, if you need to sum the values of one column which contains NAs,there are two good approaches:

1) using ifelse:

A[, (ifelse(all(is.na(col2)), col2[NA_integer_], sum(col2, na.rm = T))), 
  by = .(col1)]

2) define a function as suggested by @Frank:

suma = function(x) if (all(is.na(x))) x[NA_integer_] else sum(x, na.rm = TRUE)

A[, suma(col2), by = .(col1)]

Note that I added NA_integer_ as @Frank pointed out because I kept getting errors about the types.

2

Using sum_ from hablar

library(hablar)
A[, as.numeric(sum_(col2)), .(col1)]
#   col1 V1
#1:    A NA
#2:    B  5
#3:    C  4

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