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Could anyone help me to sort out this problem. I am using lapply in a following code provided by @Arun:

out <- lapply(1:length(f1), function(f.idx) { 
  df1 <- read.delim(f1[f.idx], header = T) 
  df2 <- read.delim(f2[f.idx], header = T) 
  df3 <- read.delim(f3[f.idx], header = T) 

  idx.v <- get_idx(df1) 
  result <- get_result(idx.v, df2, df3)

})

Now, out is a list of 110 files. These output files are of different lengths, so I cannot use as.data.frame(do.call(rbind, out)). Is there a way to save each file as separate file in loop-like manner or do I have to do it manually (e.g., out[1], out[2] etc ...).

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@Arun Yes you are right –  maria riaz Jan 5 '13 at 17:23
    
I wonder if plyr:::rbind.fill is what you're after? –  Roman Luštrik Jan 5 '13 at 22:58
    
@RomanLuštrik, its just that each file represents separate species and has different length (i.e number or observations), If I try to make one data frame then it is hard to tell the number of observations for each species. For further analysis I need to know exactly the number of observations for each species. If I some how able to save all these files in the list as separate files than things would be much easier for me. Thanks for the suggestion. –  maria riaz Jan 6 '13 at 0:12
1  
@mariariaz then you would need to introduce another variable - species name. That would be very easy to work with later on (you could, i.e. split the data frame according to species). –  Roman Luštrik Jan 6 '13 at 10:38

1 Answer 1

up vote 2 down vote accepted

What are you trying to achieve by do.call(rbind...? That is for combining data in a list. I'm not sure why you would stick an "as.data.frame" in there. If you have a list of data.frames with the same columns, but the number of rows differ and you essentially want to "stack" those data.frames on top of each other, then you should be able to use the following to get one big data.frame and then save that single object:

do.call(rbind, out)

It sounds like you have different data.frames in a list named "out" and are trying to save your data.frames as individual files in your working directory. If that is the case, try something like:

lapply(names(out), 
       function(x) write.csv(out[[x]], 
                             file = paste(x, ".csv", sep = ""))) 

If the names of the data.frames in the list are not unique, you might need to take a different approach.

If you link to your earlier related questions, that might be better than simply mentioning who shared the code with you.

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As, I have different data. frames in a list named "out", so I tried your suggestion but its not working and its just giving me, "list()" in console and no files in the working directory. I think it is because that names of the data.frames are not unique –  maria riaz Jan 5 '13 at 19:45

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