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I have df dataframe that needs subsetting into chunks of 2 names. From example below, there are 4 unique names: a,b,c,d. I need to subset into 2 one column matrices a,b and c,d.

Output format:

name1
item_value
item_value
...
END
name2
item_value
item_value
...
END

Example:

#dummy data
df <- data.frame(name=sort(c(rep(letters[1:4],2),"a","a","c")),
                   item=round(runif(11,1,10)),
                   stringsAsFactors=FALSE)
#tried approach - split per name. I need to split per 2 names.
lapply(split(df,f=df$name),
       function(x) 
       {name <- unique(x$name)
        as.matrix(c(name,x[,2],"END"))
       })

#expected output
[,1] 
[1,] "a"  
[2,] "8"  
[3,] "9"  
[4,] "6"  
[5,] "4"  
[6,] "END"
[1,] "b"  
[2,] "2"  
[3,] "10" 
[4,] "END"

[,2] 
[1,] "c"  
[2,] "6"  
[3,] "6"  
[4,] "2"  
[5,] "END"
[1,] "d"  
[2,] "4"  
[3,] "1"  
[4,] "END"

Note: Actual df has ~300000 rows with ~35000 unique names.

share|improve this question

2 Answers 2

up vote 1 down vote accepted

You may try this.

# for each 'name', "pad" 'item' with 'name' and 'END'
l1 <- lapply(split(df, f = df$name), function(x){
  name <- unique(x$name)
  as.matrix(c(name, x$item, "END")) 
  })

# create a sequence of numbers, to select two by two elements from the list
steps <- seq(from = 0, to = length(unique(df$name))/2, by = 2)

# loop over 'steps' to bind together list elements, two by two. 
l2 <- lapply(steps, function(x){
  do.call(rbind, l1[1:2 + x])
})

l2
# [[1]]
#      [,1] 
# [1,] "a"  
# [2,] "6"  
# [3,] "4"  
# [4,] "10" 
# [5,] "3"  
# [6,] "END"
# [7,] "b"  
# [8,] "6"  
# [9,] "7"  
# [10,] "END"
# 
# [[2]]
#     [,1] 
# [1,] "c"  
# [2,] "2"  
# [3,] "6"  
# [4,] "10" 
# [5,] "END"
# [6,] "d"  
# [7,] "5"  
# [8,] "4"  
# [9,] "END"
share|improve this answer
    
Thanks, it worked. I keep forgetting about do.call(rbind)... –  zx8754 Feb 19 '14 at 11:28
    
Glad to hear that it worked the way you wanted! Cheers. –  Henrik Feb 19 '14 at 11:45

Instead of making the lists from individual names make it from the column of subsets of the data.frame

res <- list("a_b" = c(df[df$name == "a",2],"END",df[df$name == "b", 2],"END"),
        "c_d" = c(df[df$name == "c",2],"END", df[df$name == "d", 2],"END"))

res2 <- vector(mode="list",length=2)
res2 <- sapply(1:(length(unique(df$name))/2),function(x) {
  sapply(seq(1,length(unique(df$name))-1,by=2), function(y) {
    name <- unique(df$name)
    res2[x] <- as.matrix(c(name[y],df[df$name == name[y],2],"END",name[y+1],df[df$name == name[y+1],2],"END"))
  })
})
answer <- res2[,1]

This is giving me a matrix of lists since there are two sapplys happening, I think everything you want is in res2[,1]

share|improve this answer
    
Thanks for the input, but I need an automated approach. Real df has ~300000 rows with ~35000 unique names. –  zx8754 Feb 19 '14 at 9:12
    
then you should have asked the question so that answering it would get you the result you want. what does the data actually look like and want do you really want? 2 lists of 17500? –  JeremyS Feb 19 '14 at 9:14
    
The opposite, 17500 matrices each having 2 names. –  zx8754 Feb 19 '14 at 9:17
    
your lapply function there makes lists –  JeremyS Feb 19 '14 at 9:19
    
Sorry, maybe it is not clear. I need a list of 17500 one column matrices each having 2 names. –  zx8754 Feb 19 '14 at 9:24

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