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Is there an easy way of avoiding 0 division error in R. Specifically,

a <- c(1,0,2,0)
b <- c(3,2,1,0)
sum(b/a)

This code gives an error due to division by zero. I would like a way to define anything/0 = 0 so that this kind of operation would still be valid.

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Well, let's back up a minute. R does NOT return an error. It quite correctly returns NaN. You had better have a darn good reason for rejecting NaN values in your work. Why do you allow any b element to be zero in the first place? You need to think about what your code is really intended to do, and what it means (statistically, say) to cheerfully throw away all the cases where b[j]==0 .

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What is you set all items in the denominator to 0 to NA and then exclude NA? in your sum?

a[a==0] <- NA
sum(b/a, na.rm=TRUE)
#-----
[1] 3.5

Or without modifying a: sum(b/ifelse(a==0,NA,a), na.rm = TRUE)

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2  
or sum(ifelse(a==0, 0, b/a)) – flodel Oct 27 '12 at 2:04
2  
Comparing numbers to 0 using == works for integers, but is risky for floating point numbers. See the R FAQ 7.31 on this. Better to use something like abs(c(1,0,2,1e-9))<1e-6 to avoid running afoul of machine accuracy issues. – Stephan Kolassa Oct 27 '12 at 11:10

You could change the function "/" to have an exception for zero:

"/" <- function(x,y) ifelse(y==0,0,base:::"/"(x,y))

For example:

> 10/0
[1] 0

This is very risky though, for example it might break other people's code. If you want to do this it is probably a good idea to assign a different operator rather than changing /. Also it makes mathematically no sense!

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Geez, Sacha, you pretty much downvoted yourself w/ that last sentence :-) – Carl Witthoft Oct 27 '12 at 18:12
    
I don't care about downvotes at all, but I don't really see why I get one here for giving the exact answer to the question posed. – Sacha Epskamp Oct 27 '12 at 18:37
    
It wasn't me. My guess is someone is paranoid about overloading operators :-( – Carl Witthoft Oct 28 '12 at 1:08

If you want to mask all the NaN and Inf results, try something like:

a <- c(1,0,2,0)
b <- c(3,2,1,0)
result <- b/a
sum(result[is.finite(result)])
[1] 3.5

Or all in one line:

sum((b/a)[is.finite(b/a)])
[1] 3.5
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