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I want this in R:

fsC=[read.table(x) for x in Sys.glob('./Trial7/*.csv')]

i.e. trying to read the content of each file to a separate vector where vectors belong to a data structure.

Python

[file(x, 'r').read() for x in glob.glob('./Trial7/*.csv')]

or better actually

[file(x, 'r') for x in glob.glob('./Trial7/*.csv')]

but I think you got the point...

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Yeah! I'm slow thinking so my answer was pretty stupid. But at least I showed you a syntax error ;) –  Niclas Nilsson Jan 4 '12 at 13:47
    
You don't need the "./" in the path. R should look relative to the current working directory. –  Richie Cotton Jan 4 '12 at 14:04

2 Answers 2

up vote 3 down vote accepted

Use sapply to "map" vectors:

sapply(Sys.glob('./Trial7/*.csv'), read.table) -> fsc
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...what about with this kind of puzzle? data.frame(Sys.glob('./Trial7/*.csv'), Sys.glob('./Trial7/*.csv'))->y; sapply(y,read.table), requires some join? Merge is too slow... how can you use that with more complex structures? Python [...] is a killer there... –  hhh Jan 4 '12 at 13:54
    
...or what about sapply(Sys.glob('./Trial7/*.csv'), read.table) -> fsc; [log(x[2]) for x in fsC], how can you do that in R? –  hhh Jan 4 '12 at 13:59
    
Since the return value in each case is a data.frame, you can't simplify the output to a vector, so sapply returns the same thing as lapply here. –  Richie Cotton Jan 4 '12 at 14:02
    
@RichieCotton: x[2] selects second column of each read file and log takes logarith of each col val -- and then [...] returns each file with a vector to the data structure. Are we understanding it the same way? (I am making this example because should I handle this really with many sapply(sapply(sappaly(sapply(....))))) (smell bad)? ...or just sapply(s[2,], log) but does it combine the structures? –  hhh Jan 4 '12 at 14:05
    
Trying to keep this clean, moved it here. –  hhh Jan 4 '12 at 14:34

You have two questions here. First, "given a vector of filenames, how do you read those files into R?".

Here's your list of filenames

trial7_files <- Sys.glob("Trial7/*.csv") 
#if you prefer to specify the names using regular expressions, try 
trial7_files <- dir("Trial7", "\\.csv$")

As previously noted, lapply is the best way of reading in the files.

fsC <- lapply(trial7_files, read.csv)

This gives you a list of data frames, and leads to your next question. "How do you combine a list of data frames with the same columns into one data frame?"

The standard way to do this is with do.call and rbind. First, it's useful to make a note of how many rows there are in each dataset.

n_records <- sapply(fsC, nrow)
fsC <- do.call(rbind, fsC)

That's your problem solved, though you probably want a column telling you which file each row came from.

fsC$source <- rep(trial7_files, n_records)
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+1, You can add information about data source by adding line: names(trial7_files) <- trial7_files and names will be populated into rownames of data.frame. –  Wojciech Sobala Jan 4 '12 at 17:30
    
@WojciechSobala: Yeah, I started with that but those rownames are numbered (rather than the same value for each source), and I thought it would be more useful to have the source as a factor. –  Richie Cotton Jan 4 '12 at 17:35
    
Error in match.names(clabs, names(xi)) : names do not match previous names Calls: do.call -> <Anonymous> -> rbind -> match.names at that point of fsC <- do.call(rbind, fsC). –  hhh Jan 4 '12 at 22:58
    
+1 for do.call(rbind, fsC). –  hhh Jan 5 '12 at 1:57

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