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I got a question about applying rollmean function to a vector with a long NA's in the middle. Here is an example.

> (z <- c(sample (x=1:10, size=5), rep (x=NA, times=5), sample (x=1:10, size=5)))
[1]  1  7  8  3  5 NA NA NA NA NA  3  5 10  8  4
> rollmean (x=zoo (z, 1:length(z)), k=3)
     2        3        4        5        6        7        8        9       10       11       12       13       14 
5.333333 6.000000 5.333333       NA       NA       NA       NA       NA       NA       NA       NA       NA       NA
> rev (rollmean (x=zoo (rev (z), 1:length (z)), k=3))
     2        3        4        5        6        7        8        9       10       11       12       13       14 
     NA       NA       NA       NA       NA       NA       NA       NA       NA       NA 6.000000 7.666667 7.333333

so how could I get the answer like this

2        3        4        5        6        7        8        9       10       11       12       13       14 
5.333333 6.000000 5.333333       NA       NA       NA       NA       NA       NA       NA 6.000000 7.666667 7.333333

thanks.

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1 Answer 1

up vote 0 down vote accepted

My understanding is rollmean is an optimized version of rollapply with mean as the function. If you don't need the added performance you can try the following which works

z = c(1,7,8,3,5,NA,NA,NA,NA,NA,3,5,10,8,4)
x = zoo (z, 1:length(z))
rollapply(x,3,mean)
2        3        4        5        6        7        8        9       10       11       12       13       14 
5.333333 6.000000 5.333333       NA       NA       NA       NA       NA       NA       NA 6.000000 7.666667 7.333333 
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Thanks and I am glad rollapply still can take parameters for fill like rollapply (x, 3, mean, fill=c("extend", NA)) –  wenching Oct 4 '13 at 8:51
    
@Henrik thanks for the reminding. –  wenching Oct 4 '13 at 11:25

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