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I am trying to convert a list of 13,000 elements, each element being a zoo object with nr = 230 and ncol = 4, to a dataframe.

I have tried setattr(mylist, 'class', 'data.frame'), but it resulted in a huge vector of NAs. I have also tried the quickdf(mylist) function from the plyr package, but that didn't work either.

The do.call(rbind.data.frame, mylist)type methods are very slow, thus not an option in this case.

Any suggestion as to the most efficient method to convert such a list to a dataframe?

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Please don't add redundant tag names in titles. –  Grant Thomas Aug 16 '13 at 12:44
    
Which tag is redundant? –  Mariam Aug 16 '13 at 12:47
    
The r tag (in the title). –  Grant Thomas Aug 16 '13 at 12:47
1  
Sorry about that, I am new to this forum and still getting used to the "rules". Please bear with me.. –  Mariam Aug 16 '13 at 12:50

2 Answers 2

up vote 3 down vote accepted

Use rbindlist from the data.table package.

data <- matrix(data = 1, nrow = 230, ncol = 4)
lstData <- rep(list(data), 16000)

library(data.table)
lstData <- Map(as.data.frame, lstData)
dfrData <- rbindlist(lstData)


system.time(dfrData <- rbindlist(lstData))
user  system elapsed 
0.12    0.03    0.15 
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It works great! The result is a data.table and I simply convert it to a data.frame afterwards! Thanks!! –  Mariam Aug 16 '13 at 13:34
2  
1. for a time series I would use xts. It is basically zoo but optimized for speed. 2. You can just do rbindlist for the dates itself. lstIndex <- Map(as.data.frame, Map(index, lstData)) dfrIndex <- rbindlist(lstIndex) setnames(dfrIndex, "Date") lstData <- Map(as.data.frame, lstData) dfrData <- rbindlist(lstData) zooResult <- as.zoo(dfrData, as.Date(dfrIndex$Date)) –  Wolfgang Wu Aug 16 '13 at 13:36
1  
You have solved my problem. Thanks a lot! I would have upvoted you answer, I just don't have enough reputation for that :) –  Mariam Aug 16 '13 at 13:38

I am not sure if this is efficient, but you can try

library(plyr)
ldply(mylist)
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As I specified in the question, docall.rbind(mylist) is not an option since it is not efficient from a memory management standpoint, and incurs a huge run time. I have not tried ldply(mylist) though.. Will try that, thanks! –  Mariam Aug 16 '13 at 12:49
    
I have erased that one. –  Metrics Aug 16 '13 at 12:49
1  
Thanks! I am currently trying ldply(mylist) and it is extremely slow.. I will let it run and report the runtime, if it is not excessive. Still I believe there must be a more efficient method in this case.. –  Mariam Aug 16 '13 at 12:52
    
Well, it gave the following error: Error in matrix(NA, nrow = nrows, ncol = length(cols)) : too many elements specified –  Mariam Aug 16 '13 at 12:53
    
Why don't you split the list into half and see if it works? –  Metrics Aug 16 '13 at 13:00

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