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I have a data set that looks like this:

Type    Date    Lively  Count
sm      1/13/2010   10  10
sm      1/14/2010   10  20
sm      2/15/2010   20  30
am      4/16/2010   5   42
am      1/17/2010   10  34
am      3/18/2010   40  54
sm      1/19/2010   10  65
sm      4/20/2010   5   67
sm      3/21/2010   40  76

I'm trying to average out all the numeric parameters by month. So my resultant data set would ideally be:

Date     Lively Count
Jan 2010     10     32.25
Feb 2010     20     30.00
Mar 2010     40     65.00
Apr 2010      5     54.50

I'm very close to this, what I currently have is:

         Lively Count
Jan 2010     10     32.25
Feb 2010     20     30.00
Mar 2010     40     65.00
Apr 2010      5     54.50

As you can see I'm missing the title 'Date'. Here is my code:

library(zoo)
z <- zoo(data[3:4], as.Date(data[,2], "%m/%d/%Y"))
aggregate(z, as.yearmon, mean)

I don't know how to make a title for the left column ('Date'), and more importantly, I don't know how to make the output of aggregate() into a table (resultant data set).

share|improve this question
    
The leftmost "column" is not a column, but the index for your zoo object. Like rownames in base R for a data.table, that's not a "column" so you can't give it a name. –  Ananda Mahto Aug 12 '13 at 9:12

1 Answer 1

up vote 4 down vote accepted

You can use the list format to specify your names within aggregate.

To get your "date" values, you need to refer to the "index" of your zoo object

aggregate(list(Lively = z[, "Lively"], Count = z[, "Count"]), 
          list(Date = as.yearmon(index(z))), mean)
#       Date Lively Count
# 1 Jan 2010     10 32.25
# 2 Feb 2010     20 30.00
# 3 Mar 2010     40 65.00
# 4 Apr 2010      5 54.50

Alternatively, you can easily change your names if required. This will allow you to be able to use the much nicer formula method for aggregate.

x <- aggregate(. ~ as.yearmon(index(z)), z, mean)
names(x)[1] <- "Date"
x
#       Date Lively Count
# 1 Jan 2010     10 32.25
# 2 Feb 2010     20 30.00
# 3 Mar 2010     40 65.00
# 4 Apr 2010      5 54.50

Note, however, that by doing so, you miss out on all the goodness that zoo has to offer by doing this. You've essentially taken a data.frame, converted it to a zoo object, and re-converted it to a data.frame.

Your aggregate(z, as.yearmon, mean) solution would be the way I would go about it, and refer to the date by using index().


Update

If you're just doing this at a later stage for aesthetic reasons, you can keep working with zoo objects since it will give you a lot of flexibility that you might not get with base R functions, and then use cbind at the end.

Following from where you left off:

library(zoo)
z <- zoo(data[3:4], as.Date(data[,2], "%m/%d/%Y"))
x <- aggregate(z, as.yearmon, mean)
cbind(Date = index(x), 
      as.data.frame.matrix(x, row.names = NULL))
#       Date Lively Count
# 1 Jan 2010     10 32.25
# 5 Feb 2010     20 30.00
# 6 Mar 2010     40 65.00
# 8 Apr 2010      5 54.50
share|improve this answer
    
oh alright. +1 for as.yearmon. Something new, everyday –  Simon O'Hanlon Aug 12 '13 at 8:55
    
@SimonO101, I didn't post for as.yearmon, but because the OP is trying to get the results from a zoo object. Pretty minor difference, I guess. –  Ananda Mahto Aug 12 '13 at 8:59
    
Still, I didn't know it, and I immediately have a use for it. So I am trying to say THANKS! :-) –  Simon O'Hanlon Aug 12 '13 at 9:04
    
i also found a nice method called fortify() that converts a zoo object into a data frame inside-r.org/packages/cran/zoo/docs/autoplot.zoo –  jeffrey Aug 13 '13 at 7:44
    
@user2649452, sure. You can also use data.frame(Date = index(x), coredata(x)). I'm still not clear why you don't want a data.frame (unless this is the final stage and you're just doing it for aesthetic reasons). zoo would most likely be faster for many things because operations on matrices are usually much faster in R than operations on data.frames. –  Ananda Mahto Aug 13 '13 at 8:35

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