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I created a list which contains 105 matrices as follows:

m<-vector("list",105)
for (i in 2:105) {
    m[[i-1]]<-Datos[(x[i-1]+1):x[i],1:14] }
m[[105]]<-Datos[(x[105]+1):533195,1:14]

For example a part of my matrix number 104 returns (In columns):

m[[104]]

    ID:                    
     8866 
     8866 
     8866 
     8866 
     8866 
     8866 
     8866 
     8866

  Date: 
     1990-4-15 
     1990-4-16
     1990-4-17
     1990-4-18
     1990-4-15
     1990-4-16
     1990-4-17
     1990-4-18

    Series: 
        APV 
        APV 
        APV 
        APV 
        INV 
        INV 
        INV 
        INV

These are some of my columns of the matrix. What I would like is to split this matrix using the series columns. I think it would be like a list of a list depending of the number of different Series there are. In this case there are 2: APV and INV ( Note that I don't know the names of the series for each matrix, so there must be a function that extract the unique different series)

In summary, I would like that:

m[[104]][[1]] returns:

        ID:                    
         8866 
         8866 
         8866 
         8866 


      Date: 
         1990-4-15 
         1990-4-16
         1990-4-17
         1990-4-18


        Series: 
            APV 
            APV 
            APV 
            APV 



And m[[104]][[2]] returns:

        ID:                    
         8866 
         8866 
         8866 
         8866 


      Date: 
         1990-4-15 
         1990-4-16
         1990-4-17
         1990-4-18


        Series: 

            INV 
            INV 
            INV 
            INV

Or maybe you come up with a more efficient way to do this.

PD: Didn't know how to put the columns at the same level

share|improve this question
    
Can you format your question using code not italics. See other questions for examples –  mnel Oct 5 '12 at 1:43
    
I tried editing, but do not understand how you can think that we will be able to help without seeing the output of dput(head(Datos)) –  BondedDust Oct 5 '12 at 2:45
    
There I tried to reformat the question. Hope you'll understand. –  Tomás Ayala Oct 5 '12 at 18:14

1 Answer 1

up vote 0 down vote accepted

Try this:

library(plyr)
lapply(m, dlply, "Series")

or:

lapply(m , function(x)split(x, x$Series))
share|improve this answer
    
It tried with dlply but R works for too long and then I get a "no Response" from the software...... And lapply with split function says: "Error in split.default(x = seq_len(nrow(x)), f = f, drop = drop, ...) : Lenght of group is 0 but lenght of data is > 0 –  Tomás Ayala Oct 5 '12 at 18:13
    
Can you provide the ouptut of class(m) and class(m[[1]])? str(m[[1]]) could also be useful. –  flodel Oct 5 '12 at 20:09
    
Also, does every element of m have a Series column? You can check that by running all(sapply(m, function(x) "Series" %in% colnames(x))). –  flodel Oct 5 '12 at 20:15
    
I was writing wrong the header... it was "SERIE" not"Series"..... all(sapply(m, function(x) "Series" %in% colnames(x))) helped me a lot as returned false with "Series"...... Thanks flodel ! –  Tomás Ayala Oct 5 '12 at 20:44

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