42

How can I remove the last 100 elements of a zoo series?

I know the name[-element] notation but I can't get it work to substract a full section

  • thanks What I really need is a little bit more complicated. I need to shift the series, removing some elements and adding other from the other side but when I do c(rep(0,10),x[1:(length(x)-11)]) it's not zoo any more. cheers – skan Sep 21 '10 at 7:29
  • 2
    @skan: What about accepting an answer to mark the question as resolved? – MERose Dec 28 '15 at 23:23
79

I like using head for this because it's easier to type. The other methods probably execute faster though... but I'm lazy and my computer is not. ;-)

x <- head(x,-100)
> head(1:102,-100)
[1] 1 2
  • 4
    This answer should be accepted. It can be used without knowing the length of x in advance, which is advantageous if you are trying to selectively read data from a file. From ?head: n: If negative, [return] all but the n last/first number of elements of x. – C8H10N4O2 Dec 2 '15 at 21:57
  • 1
    Worth noting there is also tail() which works identically but in reverse. – Mark Rucker Apr 12 '17 at 3:03
  • Also, the meaning is very clear. – JASC Feb 17 at 0:42
10

I bet length<- is the most efficient way to trim a vector:

> x <- 1:10^5
> length(x)
[1] 100000
> length(x) <- 3
> x
[1] 1 2 3
  • Precious! almost as easy to type than head() but much simpler in everything else! – Crparedes Dec 3 '18 at 8:13
9

Actually, there's a much faster way:

y <- x[1:(length(x)-1)]

Code show:

> microbenchmark( y <- head(x, -1), y <- x[-length(x)],y <- x[1:(length(x)-1)], times=10000)
 Unit: microseconds
                      expr    min      lq     mean  median      uq      max
          y <- head(x, -1) 71.399 76.4090 85.97572 78.9230 84.2775 2795.076
        y <- x[-length(x)] 53.623 55.5585 65.15008 56.5680 61.1585 2523.141
 y <- x[1:(length(x) - 1)] 25.722 28.2925 36.43029 29.1855 30.4010 2410.975
  • 1
    does not work if the length of x is 1 – yalei du Mar 1 '17 at 15:29
  • @yaleidu it would be better to use x[seq_len(length(x)-1)], which works in the length-1 case too. – Ken Williams Dec 9 '18 at 16:44
  • This is a good solution with a robust argument. – JASC Dec 27 '18 at 5:44
7

Just use the numeric indices, ie

 N <- nrow(X)
 X <- X[1:(N-100-1),]

where you should need to ensure N is larger 100 etc

5

if you're a one liner

x = x[1:(length(x) -101)]
  • With all your answers I've built almost what I need coredata(zz2) <- c(rep(0,3),head(coredata(zz),-3)) Now I just need to use it inside a zoo series with several columns, modifying just one. – skan Sep 21 '10 at 7:42
3

Another one-liner for the sake of completeness:

x <- lag(x, 100)[-1:-100]

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