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I have a data.table, DT which contains a column C with real value entries that satisfy the inequality 0 < x <= 1. I want to 'group' these entries by intervals of e.g. 10. Specifically, to all values x in C such that 0 < x <=0.1 I want to assign the value 0.1, to all values x in C such that 0.1 < x <=0.2 I want to assign the value 0.2 etc

Below is function I have written which I thought would allow me to do this (be easy, I am relatively new to R!).

r = function(x,N){

  v = numeric(10)
  for(i in 1:N)
    v[i] = i/N*(x>(i-1)/N & x<=i/N)
   v = v[v!=0]
  return(v)

}

where N is the number of intervals I require. However, the code:

DT = DT[,newC:=r(x=C,N=10)]

gives the following error:

Warning messages:
1: In v[i] = i/10 * (x > (i - 1)/10 & x <= i/10) :
  number of items to replace is not a multiple of replacement length
2: In v[i] = i/10 * (x > (i - 1)/10 & x <= i/10) :
  number of items to replace is not a multiple of replacement length
...
10: In v[i] = i/10 * (x > (i - 1)/10 & x <= i/10) :
  number of items to replace is not a multiple of replacement length

Any help much appreciated! Cheers

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1  
Why don't you simply use round() or cut()? –  Andrie Feb 13 '13 at 12:45
1  
Something like ceiling(dt$C * 10)/10?? –  Arun Feb 13 '13 at 12:56
    
Ok, but what if I wanted a different number of intervals? For example, it is not immediately obvious to me how I would use any of the above functions to produce 13 intervals say. –  user32259 Feb 13 '13 at 13:35
    
Also, it would be informative to know (regardless of whether it is optimal) why my function doesn't work. Cheers! –  user32259 Feb 13 '13 at 13:36

2 Answers 2

up vote 4 down vote accepted

A (faster) alternative is to use findInterval, which does a very similar job to cut, but avoids the to-factor and from-factor conversions

  z1 <- findInterval(x,y)
  z1 <- tail(y,-1)[z1]

And a bit of benchmarking

cutting <- function(){
  z <- cut(x,y,labels=tail(y,-1))
  #this generates a factor: 
  #you can convert it back to numeric
   z <- as.numeric(levels(z))[z]
  }

finding <- function(){
 z1 <- findInterval(x,y)
 z1 <- tail(y,-1)[z1]
}

microbenchmark(cutting(),finding())


##     Unit: microseconds
##       expr    min       lq   median      uq     max
## 1 cutting() 188.50 192.1175 193.6275 195.821 354.701
## 2 finding()  34.18  35.5140  37.5620  38.763  46.397
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If you try a line of the for-loop in your function, say with i = 1 and x = C:

DT[,1/10 * (C > (1-1)/10 & C <= 1/10)]

you'll notice that you get a vector of the same length of C. The error is saying that you can't assign a vector of length > 1 to v[i]. It's a good idea to step through your function (using functions like debug, traceback and browser) to make sure you're getting what you want as the right inputs.

Here's a way to make your function work:

r = function(x,N){

  for(i in 1:N)
    x[x>(i-1)/N & x<=i/N] <- i/N
  return(x)

}

R has a built-in way of doing this, too:

#sample data
set.seed(1)
x <- runif(100)
#to organize your data
y <- seq(0,1,.1)
z <- cut(x,y,labels=tail(y,-1))
#this generates a factor: 
#you can convert it back to numeric
z <- as.numeric(levels(z))[z]
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