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In a toy problem of mine, I have a vector a made of integers and I want to efficiently remove from a terms that are also in a vector b. I wrote the code

newa=NULL
for (j in 1:length(a))
   if (min(abs(a[i]-b))>0) newa=c(newa,a[i])

but this is terrible...

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Lots of similar related questions, here is one – Chase Jul 16 '12 at 2:25
up vote 3 down vote accepted

You could just use intersect, setdiff, etc (see ?setdiff):

a <- 1:10
b <- c(2, 3, 5, 7)

setdiff(a, b)
# [1]  1  4  6  8  9 10

Or even just use %in%:

a[!(a %in% b)] # (a %in% b) is TRUE in index i if a[i] is in b.
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thanks, that does the job indeed – Xi'an Jul 16 '12 at 1:57

It's lightening fingers like mathematical.coffee that make it so I never get to answer questions :P

I do this a lot using %in%. And I nabbed a great little bit of code from Stephen Turner that makes it even easier!

## Returns a logical vector TRUE for elements of X not in Y
"%nin%" <- function(x, y) !(x %in% y)
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