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I have a reoccuring problem - I apologize!

Say I want to have the baseball data (from the plyr package) listed according to 'id' and 'year'. There is a difference between creating the list according to either:

1. mylist1 <- dlply(baseball, .(id, year), identity)

and

2. mylist2 <- dlply(baseball, .(id), dlply, .(year), identity)

in the way the list is organized, but getting the list back into a data frame is working fine with 'mylist1'.

mydf1 <- ldply(mylist1)

but not with 'mylist2'

mydf2 <- ldply(mylist2)

which gives the following error message:

Error in list_to_dataframe(res, attr(.data, "split_label")): Result must be all atomic, or all data frames

I am a newbie to R, and this error message doesn't make much sense to me.

I would like to split my own data frame according to method 2, since I need quite a bit of data manipulation. My question is: how can I merge this list into a data frame? Is there an alternative to do.call(rbind, do.call(rbind,...?

I am greatful for any help!

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1  
Why do you need to analyse the data in this way? I don't think I've ever had to do something like this. Maybe it's just because in designing solutions to problems I try to avoid getting data structures that I can't assemble again. My preferred way of working is to stick to data.frames whenever possible, i.e. use ddply by preference. –  Andrie Oct 14 '11 at 16:42
    
You might be right, but I work with hourly accumulated data of a meteorological data. I have a time series for each station, member of an ensemble, date and forecast time, and for each time series I need to get hourly values - not accumulated values. Sisse –  Sisse Oct 19 '11 at 10:08
    
That is possible using ddply. Without knowing your data structure it's bit hard to double guess, but I suspect that combining all of your data into one massive data.frame and ensuring you have the right indices should work. Good luck with your analysis. –  Andrie Oct 19 '11 at 10:16

1 Answer 1

I agree with @Andrie that this is an odd structure. But I assume that you have a particular reason for doing it this way.

Since it took two passes with dlply to create mylist2, it takes two invocations of ldply to put it back together.

mydf2 <- ldply(mylist2, ldply)

This restores baseball (modulo ordering)

> class(mydf2)
[1] "data.frame"
> all(dim(mydf2) == dim(baseball))
[1] TRUE
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Thanks very much for great help! –  Sisse Oct 19 '11 at 10:08

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