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I have some data in the following format:

    date     x     
    2001/06  9949 
    2001/07  8554  
    2001/08  6954 
    2001/09  7568 
    2001/10 11238  
    2001/11 11969 
    ... more rows

I want to extract the x mean for each month. I tried some code with aggregate, but failed. Thanks for any help on doing this.

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looks like you've already got it ... –  GSee Aug 16 '12 at 13:01
    
No the data goes on: 2002/01...2012/01, 2012/02. –  Fernando Aug 16 '12 at 13:03

2 Answers 2

up vote 1 down vote accepted

Here I simulate a data frame called df with more data:

df <- data.frame( 
      date = apply(expand.grid(2001:2012,1:12),1,paste,collapse="/"),
      x = rnorm(12^2,1000,1000),
      stringsAsFactors=FALSE)

Using the way your date vector is constructed you can obtain months by removing the firs four digits followed by a forward slash. Here I use this as indexing variable in tapply to compute the means:

with(df, tapply(x, gsub("\\d{4}/","",date), mean))
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Nice solution, thanks! –  Fernando Aug 16 '12 at 13:25
    
Notice that the result is a named vector in a different order. The names give the months. –  Sacha Epskamp Aug 16 '12 at 13:26
    
Yes, i saw that - this reorder actually helps me! –  Fernando Aug 17 '12 at 14:19

Sorry...just creat an month-sequence vector then used tapply. It was very easy:

m.seq = rep(c(6:12, 1:5), length = nrow(data))
m.means = tapply(data$x, m.seq, mean)

But thanks for the comments anyway!

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