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I searched the forum and couldn't find a similar question, so I apologize if I may have missed it.

Simply, I have a list of data. It's length is 132, and within each list, there is a list of length 20.

Is there a "quick" way to convert this structure into a data frame that has 132 rows and 20 columns of data? I am new to R, so I figure there is probably an easy way to do this.

Many thanks in advance

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So you want each list element as a row of data in your data.frame? –  Joshua Ulrich Nov 19 '10 at 16:44
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8 Answers

up vote 72 down vote accepted

Assuming your list of lists is called l:

df <- data.frame(matrix(unlist(l), nrow=132, byrow=T))
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6  
You need to wrap that in data.frame()... –  Joshua Ulrich Nov 19 '10 at 16:46
    
@Joshua Ulrich: Ooops! I don't know why, but I thought he was asking for a matrix :) –  nico Nov 19 '10 at 18:27
3  
unlist did the trick. After that, I could manipulate/change what I needed. Thx! –  Btibert3 Nov 19 '10 at 21:30
18  
Careful here if your data is not all of the same type. Passing through a matrix means that all data will be coerced into a common type. I.e. if you have one column of character data and one column of numeric data the numeric data will be coerced to string by matrix() and then both to factor by data.frame(). –  Ian Sudbery Mar 15 '13 at 10:15
    
@Ian Sudbery: good point –  nico Mar 15 '13 at 18:07
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With rbind

do.call(rbind.data.frame, your_list)

Edit: Previous version return data.frame of list's instead of vectors (as @IanSudbery pointed out in comments).

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Why does this work but rbind(your_list) returns a 1x32 list matrix? –  eykanal Dec 21 '11 at 17:03
7  
@eykanal do.call pass elements of your_list as arguments to rbind. It's equivalent of rbind(your_list[[1]], your_list[[2]], your_list[[3]], ....., your_list[[length of your_list]]). –  Marek Dec 21 '11 at 22:30
    
This method suffers from the null situation. –  Frank WANG May 9 '12 at 9:38
1  
@FrankWANG But this method is not designed to null situation. It's required that your_list contain equally sized vectors. NULL has length 0 so it should failed. –  Marek May 9 '12 at 20:42
3  
This method seems to return the correct object, but on inspecting the object, you'll find that the columns are lists rather than vectors, which can lead to problems down the line if you are not expecting it. –  Ian Sudbery Mar 15 '13 at 10:18
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You can use the plyr package. For example a nested list of the form

l <- list(a = list(var.1 = 1, var.2 = 2, var.3 = 3)
      , b = list(var.1 = 4, var.2 = 5, var.3 = 6)
      , c = list(var.1 = 7, var.2 = 8, var.3 = 9)
      , d = list(var.1 = 10, var.2 = 11, var.3 = 12)
      )

has now a length of 4 and each list in l contains another list of the length 3. Now you can run

  library (plyr)
  df <- ldply (l, data.frame)

and should get the same result as in the answer @Marek and @nico.

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Great answer. I could you explain a little how that works? It simply returns a data frame for each list entry? –  Michael Barton Oct 16 '12 at 18:59
4  
Imho the BEST answer. It returns a honest data.frame. All the data types (character, numeric, etc) are correctly transformed. If the list has different data types their will be all transformed to character with matrix approach. –  Roah Aug 24 '13 at 14:00
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The package data.table has the function rbindlist which is a superfast implementation of do.call(rbind, list(...)).

It can take a list of lists, data.frames or data.tables as input.

library(data.table)
ll <- list(a = list(var.1 = 1, var.2 = 2, var.3 = 3)
  , b = list(var.1 = 4, var.2 = 5, var.3 = 6)
  , c = list(var.1 = 7, var.2 = 8, var.3 = 9)
  , d = list(var.1 = 10, var.2 = 11, var.3 = 12)
  )

DT <- rbindlist(ll)

This returns a data.table inherits from data.frame.

If you really want to convert back to a data.frame use as.data.frame(DT)

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data.frame(t(sapply(mylistlist,c)))

sapply converts it to a matrix. data.frame converts the matrix to a data frame.

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updated to take inner lists as rows. –  Alex Brown Nov 19 '10 at 17:20
1  
best answer by far! None of the other solutions get the types/column names correct. THANK YOU! –  dchandler Jan 11 at 2:42
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assume your list is called L,

data.frame(Reduce(rbind, L))
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More answers, along with timings in the answer to this question: What is the most efficient way to cast a list as a data frame?

The quickest way, that doesn't produce a dataframe with lists rather than vectors for columns appears to be (from Martin Morgan's answer):

l <- list(list(col1="a",col2=1),list(col1="b",col2=2))
f = function(x) function(i) unlist(lapply(x, `[[`, i), use.names=FALSE)
as.data.frame(Map(f(l), names(l[[1]])))
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Reshape2 yields the same output as the plyr example above:

library(reshape2)
l <- list(a = list(var.1 = 1, var.2 = 2, var.3 = 3)
          , b = list(var.1 = 4, var.2 = 5, var.3 = 6)
          , c = list(var.1 = 7, var.2 = 8, var.3 = 9)
          , d = list(var.1 = 10, var.2 = 11, var.3 = 12)
)
l <- melt(l)
dcast(l, L1 ~ L2)

yields:

  L1 var.1 var.2 var.3
1  a     1     2     3
2  b     4     5     6
3  c     7     8     9
4  d    10    11    12

If you were almost out of pixels you could do this all in 1 line w/ recast().

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