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I´m all new to scraping and I´m trying to understand xpath using R. My objective is to create a vector of people from this website. I´m able to do it using :

r<-htmlTreeParse(e) ## e is after getURL 
    g.k<-(r[[3]][[1]][[2]][[3]][[2]][[2]][[2]][[1]][[4]])
    l<-g.k[names(g.k)=="text"]
    u<-ldply(l,function(x) {

        w<-xmlValue(x)
        return(w)
        })

However this is cumbersome and I´d prefer to use xpath. How do I go about referencing the path detailed above? Is there a function for this or can I submit my path somehow referenced as above?

I´ve come to

xpathApply( htmlTreeParse(e, useInt=T), "//body//text//div//div//p//text()", function(k) xmlValue(k))->kk

But this leaves me a lot of cleaning up to do and I assume it can be done better.

Regards, //M

EDIT: Sorry for the unclearliness, but I´m all new to this and rather confused. The XML document is too large to be pasted unfortunately. I guess my question is whether there is some easy way to find the name of these nodes/structure of the document, besides using view source ? I´ve come a little closer to what I´d like:

getNodeSet(htmlTreeParse(e, useInt=T), "//p")[[5]]->e2

gives me the list of what I want. However still in xml with br tags. I thought running

xpathApply(e2, "//text()", function(k) xmlValue(k))->kk

would provide a list that later could be unlisted. however it provides a list with more garbage than e2 displays.

Is there a way to do this directly:

xpathApply(htmlTreeParse(e, useInt=T), "//p[5]//text()", function(k) xmlValue(k))->kk

Link to the web page: I´m trying to get the names, and only, the names from the page.

getURL("http://legeforeningen.no/id/1712")
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1  
Very unclear question. 1) Provide the XML document from which nodes are to be selected. 2) Explain which nodes from the provided XML document you want selected. –  Dimitre Novatchev Jul 4 '11 at 22:42
    
Even after your edit, this question is impossible to answer. We don't know what your XML looks like, and neither do you provide any examples of the contents of e2, kk or any other example data. –  Andrie Jul 5 '11 at 6:58
    
@Misha, make a small reproducible example. A watered down version of your XML file. –  Roman Luštrik Jul 5 '11 at 7:57
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2 Answers 2

up vote 1 down vote accepted

I ended up with

xml = htmlTreeParse("http://legeforeningen.no/id/1712", useInternalNodes=TRUE)

(no need for RCurl) and then

sub(",.*$", "", unlist(xpathApply(xml, "//p[4]/text()", xmlValue)))

(subset in xpath) which leaves a final line that is not a name. One could do the text processing in XML, too, but then one would iterate at the R level.

n <- xpathApply(xml, "count(//p[4]/text())") - 1L
sapply(seq_len(n), function(i) {
    xpathApply(xml, sprintf('substring-before(//p[4]/text()[%d], ",")', i))
})

Unfortunately, this does not pick up names that do not contain a comma.

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thx. just what I was looking for –  Misha Jul 5 '11 at 22:27
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Use a mixture of xpath and string manipulation.

#Retrieve and parse the page.
library(XML)
library(RCurl)
page <- getURL("http://legeforeningen.no/id/1712")
parsed <- htmlTreeParse(page, useInternalNodes = TRUE)

Inspecting the parsed variable which contains the page's source tells us that instead of sensibly using a list tag (like <ul>), the author just put a paragraph (<p>) of text split with line breaks (<br />). We use xpath to retrieve the <p> elements.

#Inspection tells use we want the fifth paragraph.
name_nodes <- xpathApply(parsed, "//p")[[5]]

Now we convert to character, split on the <br> tags and remove empty lines.

all_names <- as(name_nodes, "character")
all_names <- gsub("</?p>", "", all_names)
all_names <- strsplit(all_names, "<br />")[[1]]
all_names <- all_names[nzchar(all_names)]
all_names

Optionally, separate the names of people and their locations.

strsplit(all_names, ", ")

Or more prettily with stringr.

str_split_fixed(all_names, ", ", 2)
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So it is impossible alone with clever use of xpath and xmlvalue to leave me with a vector of names? –  Misha Jul 5 '11 at 17:03
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