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Depending on the values in the vector 'p' I want to set the value in another vector to either 0 or 1. I tried the following

newvector=rep(0,length(p))
newvector=ifelse(p>=0.5,newvector=1,newvector=0)

But this throws the error, that ifelse has unused arguments

Vector p

c(0.691401225261269, 0.433129612442971, 0.715983054119369, 0.886747655276408, 
0.768369966075636, 0.619451618025444, 0.747447691612602, 0.787480458130569, 
0.29095065207117, 0.703299386664627, 0.72613890310703, 0.244542050906673, 
0.424358969255879, 0.244542050906673, 0.405127250273614, 0.365573918723265, 
0.277863840689181, 0.656827737910484, 0.762318455515624, 0.839076103987831, 
0.337670440659204, 0.781335609699773, 0.815504546491645, 0.671220524010401
)
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4 Answers

up vote 7 down vote accepted

You don't need to make newvector beforehand and using it as an argument to ifelse is causing the error.

Try this...

newvector <- ifelse( p>=0.5 , 1 , 0 )

But even better just do it vectorised...

newvector <- as.integer( p >= 0.5 )
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ifelse is vectorized. –  Roland Mar 22 '13 at 11:22
1  
+1 for the second method. Generally avoid "if..." when direct vector operations will suffice. –  Carl Witthoft Mar 22 '13 at 11:23
1  
or (p >= 0.5)*1 –  Arun Mar 22 '13 at 12:04
    
@Roland You should discuss this with Gavin Simpson. See the comments under my answer here where I refer to ifelse being vectorised and being corrected on this. ifelse just hides the loop apparently (I assume in the way that the apply family do, in C code) –  Simon O'Hanlon Mar 22 '13 at 12:06
    
@GavinSimpson perhaps you can wade in on why ifelse is not vectorised (see comments above this one). (will SO notify him if I include his handle in a comment?!) –  Simon O'Hanlon Mar 22 '13 at 12:08
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Just use :

newvector <- ifelse(p>=0.5,1,0)

The second and third arguments of ifelse are not expressions but the values to be returned.

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dang it how could I have missed this? Thx for the answer, I feel incredibly stupid now –  Rickyfox Mar 22 '13 at 11:16
3  
Never underestimate the power of R to make you feel stupid :-) –  juba Mar 22 '13 at 11:17
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You could also use findInterval for this particular case:

findInterval(p, .5)
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in this case you could use newvector<-round(p) instead of the ifelse.

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Only so long as you know p < 1.5 is always true -- and that p > -0.5 is true as well. So be cautious in the general case :-) –  Carl Witthoft Mar 22 '13 at 11:26
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