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I need a function in R that can test all cells in any different columns and return a new column, with the following condition:

  • If at least one column has 1 return 1
  • If all columns have 0 return 0
  • If all columns have NA return NA
  • If one column has 0 and the rest has NA return 0
  • If one column has NA and the rest has 0 return 0

Here is an example:
I have two columns A and B

A = c(1,1,1,  0,0,0,  NA)  
B = c(1,0,NA, 1,0,NA, NA)  

And I need a function that returns the following column:

Z = c(1,1,1,   1,0,0,  NA)  

Thanks in advance! :)

  • You can use rowSums i.e. v1 <- as.integer(rowSums(dat!=0, na.rm=TRUE)>0); v1*NA^!rowSums(!is.na(dat)) – akrun Feb 11 '17 at 19:31
  • I found a perfect answer to my question, and i want to share it with you: A = c(1,1,1, 0,0,0, NA) B = c(1,0,NA, 1,0,NA, NA) Z=rep(2,length(A)) for (i in 1:length(A)){ ceiling(mean(c(A[i],B[i]),na.rm=T))->Z[i] } Z[is.na(Z<0)]<-NA Z – user3423418 Feb 12 '17 at 0:14
2

At the moment the use of pmax with the na.rm parameter set will deliver the desired results:

> pmax(A,B, na.rm=TRUE)
[1]  1  1  1  1  0  0 NA

I cannot tell if it will handle all the edge case that might arise in situations with greater numbers of "columns" (which are really vectors in your example. I'm assuming that all "columns" are numeric.

| improve this answer | |
  • Thanks but unfortunately, it doesn't work with multi columns! – user3423418 Feb 11 '17 at 22:47
  • You should always post a problem that illustrates the full complexity. – IRTFM Feb 12 '17 at 0:33
0

We can use rowSums

v1 <- as.integer(rowSums(dat!=0, na.rm=TRUE)>0);
v1*NA^!rowSums(!is.na(dat))
#[1]  1  1  1  1  0  0 NA

Or using tidyverse

library(tidyverse)
dat %>%
    mutate(Z = coalesce(A, B))
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