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Let say I have this zoo vector

mine <- zoo(c(rep(0,4),rep(1,4),rep(0,5),rep(1,23),rep(0,4),rep(1,2)),as.chron(seq(1:42)))

And I want to extract several elements in some order

> mine[14]
01/15/70 
       1 
> mine[5]
01/06/70 
       1 
> mine[41]
02/11/70 
       1 

It works!. But now I try to do it in a different way

zz <- c(14, 5, 41)
mine[zz]

01/06/70 01/15/70 02/11/70 
       1        1        1 

I don't know why I get it in a different order. How can I keep the order I want, the order of my list ?? I don't mind if it's a list, a vector, by columns or by row, but I'd like to get it in the order I've asked for.

cheers

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2  
What's the language? –  Paul Nov 25 '10 at 12:33
    
please try to provide reproducible code, this example requires the zoo package and chron package in R, of unspecified version on an unstated environment –  mdsumner Nov 25 '10 at 13:39
    
Use rep's each argument to avoid repeaded calls to it, e.g., rep(rep.int(0:1, 3), each = c(4, 4, 5, 23, 4, 2)). –  Richie Cotton Nov 25 '10 at 13:46
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1 Answer

up vote 4 down vote accepted

The answer to why zoo does this is that it has a method for the function [ ([.zoo), and it creates a new zoo object from the subsetted values, which it logically wants to reorder so that it is a valid zoo object.

You can achieve what you want by accessing the time indices and data via the relevant accessor functions:

> index(mine)[c(14, 5, 41)]
[1] 01/15/70 01/06/70 02/11/70
> coredata(mine)[c(14, 5, 41)]
[1] 1 1 1

If you want to combine this into a single step, write your own fun to do:

myExtract <- function(x, want) {
    out <- coredata(mine)[want]
    names(out) <- index(x)[want]
    out
}

Which gives:

> myExtract(mine, want = c(14, 5, 41))
01/15/70 01/06/70 02/11/70 
       1        1        1
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Thank You very much. Simple (but important) things like these makes a code fail –  skan Nov 27 '10 at 14:56
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