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Here is some basic code and its output. I really can't say anything more than a logical test for a sequence containing 1.2 is giving an inaccurate result. It is working for many other values.

# Incorrect
> seq(0.5, 1.5, by=0.05) == 1.2
 [1] FALSE FALSE FALSE FALSE FALSE FALSE FALSE FALSE FALSE FALSE FALSE FALSE
[13] FALSE FALSE FALSE FALSE FALSE FALSE FALSE FALSE FALSE

# Correct
> seq(0.5, 1.5, by=0.05) == 1.15
 [1] FALSE FALSE FALSE FALSE FALSE FALSE FALSE FALSE FALSE FALSE FALSE FALSE
[13] FALSE  TRUE FALSE FALSE FALSE FALSE FALSE FALSE FALSE

# Correct
> seq(0.5, 1.5, by=0.05) == 1.25
 [1] FALSE FALSE FALSE FALSE FALSE FALSE FALSE FALSE FALSE FALSE FALSE FALSE
[13] FALSE FALSE FALSE  TRUE FALSE FALSE FALSE FALSE FALSE

# Correct
> seq(0.5, 1.5, by=0.05) == 1.3
 [1] FALSE FALSE FALSE FALSE FALSE FALSE FALSE FALSE FALSE FALSE FALSE FALSE
[13] FALSE FALSE FALSE FALSE  TRUE FALSE FALSE FALSE FALSE

I tried testing all the values using the following, which does not reproduce the bug:

> sapply(seq(0.5, 1.5, by=0.05), function(x){sum(seq(0.5, 1.5, by=0.05) == x)})
 [1] 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1

I'm using R version 2.13.2 (2011-09-30), Platform: x86_64-pc-linux-gnu (64-bit).

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2  
This is not a bug, it's the consequence of using floating point aritmetic to represent numbers. You should use all.equal instead of == to test for equality. This question has been asked a few times on SO - I shall attempt to find them and post links. –  Andrie Oct 15 '11 at 15:02
    
That was my guess. But I assumed that the same issue would arise for other values, no? Also, all.equal won't work here because I want to find the value that is equal to 1.2 (I had this test inside of which()). –  Charlie Oct 15 '11 at 15:06
1  
Similar questions: stackoverflow.com/q/7664017/602276, stackoverflow.com/q/3395696/602276 –  Andrie Oct 15 '11 at 15:07
5  
It's also in the R-FAQ. You may want to read the whole document. It should save you some time (and maybe embarrassment) in the long run. –  BondedDust Oct 15 '11 at 15:08
1  
You can create a vectorized version of all.equal using Vectorize, and then which(all.equal.vec(...) == TRUE). –  joran Oct 15 '11 at 15:50

1 Answer 1

up vote 4 down vote accepted

You can duplicate what all.equal is doing by writing a comparison function of your own:

is.nearenough=function(x,y,tol=.Machine$double.eps^0.5){
  abs(x-y)<tol
}

then you can do which(is.nearenough(s,1.2)) where s is your sequence. You may need to tweak the tolerance for your application.

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