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I have some data from and I am trying to load it into R. It is in .csv files and I can view the data in both Excel and OpenOffice. (If you are curious, it is the 2011 poll results data from Elections Canada data available here).

The data is coded in an unusual manner. A typical line is:

12002,Central Nova","Nova-Centre"," 1","River John",N,N,"",1,299,"Chisholm","","Matthew","Green Party","Parti Vert",N,N,11

There is a " on the end of the Central-Nova but not at the beginning. So in order to read in the data, I suppressed the quotes, which worked fine for the first few files. ie.

test<-read.csv("pollresults_resultatsbureau11001.csv",header = TRUE,sep=",",fileEncoding="latin1",as.is=TRUE,quote="")

Now here is the problem: in another file (eg. pollresults_resultatsbureau12002.csv), there is a line of data like this:

12002,Central Nova","Nova-Centre"," 6-1","Pictou, Subd. A",N,N,"",0,168,"Parker","","David K.","NDP-New Democratic Party","NPD-Nouveau Parti democratique",N,N,28

Because I need to suppress the quotes, the entry "Pictou, Subd. A" makes R wants to split this into 2 variables. The data can't be read in since it wants to add a column half way through constructing the dataframe.

Excel and OpenOffice both can open these files no problem. Somehow, Excel and OpenOffice know that quotation marks only matter if they are at the beginning of a variable entry.

Do you know what option I need to enable on R to get this data in? I have >300 files that I need to load (each with ~1000 rows each) so a manual fix is not an option...

I have looked all over the place for a solution but can't find one.

share|improve this question
    
Some sort of regex solution to repair the unmatched quotes is probably one option. Probably lots of ways to go about that, but one R option might be to use readLines, replace ",[letters or spaces]"" with a fixed version using back references, push back out using writeLines...? –  joran Feb 25 '13 at 19:46
    
another thought, if the 300+ files are all the same format, would be to get them concatenated so you can operate on one file –  kpierce8 Feb 25 '13 at 19:48
    
You say "to suppress the quotes, the entry "Pictou, Subd. A" makes R wants to split this into 2 variables", it splits because you have a comma as a separator. –  agstudy Feb 25 '13 at 19:48
1  
When did you download the files? There's a note at the bottom of the page that reads "Note that a formatting error was corrected on December 22, 2011, in the CSV files (format: pollresults-resultatsbureau).", and none of the files I have randomly chosen seem to have any problems. Can you link to the specific file that is giving you this problem? –  Ananda Mahto Feb 25 '13 at 19:50
    
@kpierce8, That is what I was planning on doing. The way I was going to do this was using do.call("rbind"...). Before that, however, I will need to be able to read them in. –  JaM Feb 25 '13 at 19:51

2 Answers 2

up vote 1 down vote accepted

Building on my comments, here is a solution that would read all the CSV files into a single list.

# Deal with French properly
options(encoding="latin1")

# Set your working directory to where you have
#   unzipped all of your 308 CSV files
setwd("path/to/unzipped/files")

# Get the file names
temp <- list.files()

# Extract the 5-digit code which we can use as names
Codes <- gsub("pollresults_resultatsbureau|.csv", "", temp)

# Read all the files into a single list named "pollResults"
pollResults <- lapply(seq_along(temp), function(x) {
  T0 <- readLines(temp[x])
  T0[-1] <- gsub('^(.{6})(.*)$', '\\1\\"\\2', T0[-1])
  final <- read.csv(text = T0, header = TRUE)
  final
})
names(pollResults) <- Codes

You can easily work with this list in different ways. If you wanted to just see the 90th data.frame you can access it by using pollResults[[90]] or by using pollResults[["24058"]] (in other words, either by index number or by district number).

Having the data in this format means you can also do a lot of other convenient things. For instance, if you wanted to fix all 308 of the CSVs in one go, you can use the following code, which will create new CSVs with the file name prefixed with "Corrected_".

invisible(lapply(seq_along(pollResults), function(x) {
  NewFilename <- paste("Corrected", temp[x], sep = "_")
  write.csv(pollResults[[x]], file = NewFilename, 
            quote = TRUE, row.names = FALSE)
}))

Hope this helps!

share|improve this answer

This answer is mainly to @AnandaMahto (see comments to the original question).

First, it helps to set some options globally because of the french accents in the data:

options(encoding="latin1")

Next, read in the data verbatim using readLines():

temp <- readLines("pollresults_resultatsbureau13001.csv")

Following this, simply replace the first comma in each line of data with a comma+quotation. This works because the first field is always 5 characters long. Note that it leaves the header untouched.

temp[-1] <- gsub('^(.{6})(.*)$', '\\1\\"\\2', temp[-1])

Penultimately, write over the original file.

fileConn<-file("pollresults_resultatsbureau13001.csv") writeLines(temp,fileConn) close(fileConn)

Finally, simply read the data back into R:

data<-read.csv(file="pollresults_resultatsbureau13001.csv",header = TRUE,sep=",")

There is probably a more parsimonious way to do this (and one that can be iterated more easily) but this process made sense to me.

share|improve this answer
    
Great! +1 for taking the efforts to get this to work. I'm glad the comments helped. I've added a more streamlined solution here, but I'm not sure how comfortable you are with dealing with lists. I would personally prefer have a single list in my workspace to hundreds of objects. And, since these data.frames are all the same format, you can also use do.call(rbind, pollResults) (from my answer) to get one giant data.frame that includes all the districts in one place. Try it out and report back, and good luck with your analysis! –  Ananda Mahto Feb 26 '13 at 16:16

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