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Given a list:

alist = list(
  list(name="Foo",age=22),
  list(name="Bar"),
  list(name="Baz",age=NULL)
 )

what's the best way to convert this into a dataframe with name and age columns, with missing values (I'll accept NA or "" in that order of preference)?

Simple methods using ldply fail because it tries to convert each list element into a data frame, but the one with the NULL barfs because the lengths don't match. Best I have at the moment is:

> ldply(alist,function(s){t(data.frame(unlist(s)))})
  name  age
1  Foo   22
2  Bar <NA>
3  Baz <NA>

but that's pretty icky and the numeric variable becomes a factor...

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Kind of annoying that check.rows=FALSE still gives an error about rows having different numbers of observations... –  Joshua Ulrich Apr 3 '13 at 17:26

2 Answers 2

up vote 3 down vote accepted

A comment mentioned wanting only a single loop, which can be achieved with @flodel's answer just by putting the body of the two loops together:

rbind.fill(lapply(alist, function(f) {
  as.data.frame(Filter(Negate(is.null), f))
}))

giving

  name age
1  Foo  22
2  Bar  NA
3  Baz  NA
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Step1: remove NULL items

non.null.list <- lapply(alist, Filter, f = Negate(is.null))

Step2: stack everything together:

library(plyr)
rbind.fill(lapply(non.null.list, as.data.frame))
#   name age
# 1  Foo  22
# 2  Bar  NA
# 3  Baz  NA

Edit: In case you had a variable that is NULL for all your list items, it would not show up in your final output. If instead, you'd like a column filled with NA, the first step should not remove NULLs but replace them with NAs:

Step 1 alternative: replace NULL with NA:

non.null.list <- lapply(alist, lapply, function(x)ifelse(is.null(x), NA, x))
share|improve this answer
    
That second step was the subject of this question: stackoverflow.com/questions/15753091/…, for which Josh O'Brien had a longer but more scalable answer. –  flodel Apr 3 '13 at 17:25
    
I'm holding out for a solution that only has one loop/apply step... Otherwise this seems to crack it. –  Spacedman Apr 3 '13 at 19:26

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