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I am using the R function xpathSApply where I want to choose certain child nodes. At the moment I can only choose one child node e.g.

xpathSApply(dat, "//Establishment[AddressLine3='Mumbles']/BusinessName",xmlValue)

where this gives me a list of restaraunts where the child node AddressLine3 = Mumbles. There is also another child node I am interested in called Rating (full path is //Establishment/Rating). What I would like to do is bring back a pair of values, the BusinessName and Rating child nodes in one xPath query. Can this be done?

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can you use concat? –  Joel M. Lamsen Feb 19 '14 at 10:19
1  
Can you share a sample of the xml. Should be very easy and I can get you the xpath. –  Vinay Feb 19 '14 at 10:21
    

2 Answers 2

up vote 1 down vote accepted

you can use "|" to separate the 2 queries. But obviously it will return the values in the same vector, then you have to formate the result.

url <- "http://ratings.food.gov.uk/OpenDataFiles/FHRS568en-GB.xml"
doc <- xmlParse(url)

datas <- xpathSApply(doc, "//EstablishmentDetail[AddressLine3='Mumbles']/BusinessName | //EstablishmentDetail[AddressLine3='Mumbles']/RatingValue", xmlValue)

data.frame(BusinessName = datas[seq(1, 117, by = 2)], RatingValue = datas[-seq(1, 117, by = 2)])
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thanks Julien - this was what I was looking for. –  user3310867 Feb 19 '14 at 15:10
    
also I'm curious how the "-seq" works in the second column. Could you please elaborate on what that is doing? –  user3310867 Feb 19 '14 at 15:26
    
datas[-1] is "datas" without his first element, datas[-c(1, 2)] "datas" without the 1st and 2nd elements. datas[-seq(1, 117, by = 2)] returns the vector "datas" without the elements indexed by the values in the vector produced by seq(1, 117, by = 2). Though that was just for the example, it's not the best way to do it. –  Julien Navarre Feb 19 '14 at 17:33
    
ok thanks I understand what you have done now. –  user3310867 Feb 21 '14 at 11:16

The XPath query isn't R-specific, so this suggests

query <- "//EstablishmentDetail[AddressLine3='Mumbles']/
              *[self::BusinessName or self::RatingValue]"

which could be munged as

library(XML)
xml <- xmlParse("http://ratings.food.gov.uk/OpenDataFiles/FHRS568en-GB.xml")
as.data.frame(split(vapply(xml[query], xmlValue, character(1)), 1:2))

But maybe it's clearer to write

query <- "//EstablishmentDetail[AddressLine3='Mumbles']"
xmlToDataFrame(xml[query])[, c("BusinessName", "RatingValue")]
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