Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free.

I'm looking for a simple and efficient way to transform XML datas as a data.frame (but not all the elements though).

I have this file : http://www-sop.inria.fr/members/Philippe.Poulard/projet/2013/entries_hotels.xml

I used xpathSApply, but that's bad because it doesn't conserve the null elements. In the file some latitudes are empty, but with xpathSApply I can't know which hotels have an empty latitude element because they are ignored.

I found the xmlToList function, and it's nice with XML because it's prety the same structure (it avoid to have many NULL values in a data frame).

But now I have 2 problems :

If I want to create a data frame from this list with an exhausting list of elements and keep the NULLs elements, how can i do ? I did this but NULLs aren't kept in my vector :

library(XML)
hotels <- "http://www-sop.inria.fr/members/Philippe.Poulard/projet/2013/entries_hotels.xml"
list <- xmlToList(hotels)
latitudes.hotels <- c()
for(element in list) {latitudes.hotels <- c(latitudes.hotels, element$latitude)}

And my second problem is that if I want to work directly with my list, the problem is that all the names are the sames : "entry".
Then I wonder how I can acces to the entry with the Id equals to x for example, which(list$entry$ID == x).
I can do it with the same type of vector than above

ids.hotels <- c()
for(element in list) {ids.hotels <- c(ids.hotels, element$ID)}
list[[which(ids.hotels == x)]]

But I think there is a better way to do it, and it's wrong if one ID element is empty in my XML file.

Thank you for any help

share|improve this question

1 Answer 1

up vote 1 down vote accepted

I'm not familiar with the XML package, however you can extract elements using base functions and can retain the missing longitude/latitude.

lst <- xmlToList(hotels)

ll <- lapply(1:150 , function(z) 
                c(id=lst[[z]][['ID']],name=lst[[z]][['name_fr']],
                lat=lst[[z]][['latitude']],long=lst[[z]][['longitude']]))

library(plyr)
df <- rbind.fill(
            lapply(ll,function(y){as.data.frame(t(y),stringsAsFactors=FALSE)}))

Got the rbind.fill from here: do.call(rbind, list) for uneven number of column

Also whereas all the names of the list are 'entry' eg using names(lst[1]) for the first, you can get the names by names(lst[[1]])

share|improve this answer
    
Thank you, very nice fast and efficient ! –  Julien Navarre Feb 8 '14 at 23:26

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.