Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

Well I'm using PugiXML in C++ using Visual Studio 2010 to get the content of an element, but the thing is that it stops to getting the value when it sees a "<" so it doesn't get the value, it just gets the content till it reaches a "<" character even if the "<" is not closing its element. I want it to get till it reaches its closing tag even if it ignores the tags, but only the text inside of the inner tags, at least.

And I also would like to know how to get the Outer XML for example if I fetch the element

pugi::xpath_node_set tools = doc.select_nodes("/mesh/bounds/b"); what do I do to get the whole content which would be " Link Till here"

this content is the same given down here:

#include "pugixml.hpp"

#include <iostream>
#include <conio.h>
#include <stdio.h>

using namespace std;

int main//21
    () {
    string source = "<mesh name='sphere'><bounds><b id='hey'> <a DeriveCaptionFrom='lastparam' name='testx' href='http://www.google.com'>Link Till here<b>it will stop here and ignore the rest</b> text</a></b> 0 1 1</bounds></mesh>";

    int from_string;
    from_string = 1;

    pugi::xml_document doc;
    pugi::xml_parse_result result;
    string filename = "xgconsole.xml";
    result = doc.load_buffer(source.c_str(), source.size());
    /* result = doc.load_file(filename.c_str());
    if(!result){
        cout << "File " << filename.c_str() << " couldn't be found" << endl;
        _getch();
        return 0;
    } */

        pugi::xpath_node_set tools = doc.select_nodes("/mesh/bounds/b/a[@href='http://www.google.com' and @DeriveCaptionFrom='lastparam']");

        for (pugi::xpath_node_set::const_iterator it = tools.begin(); it != tools.end(); ++it) {
            pugi::xpath_node node = *it;
            std::cout << "Attribute Href: " << node.node().attribute("href").value() << endl;
            std::cout << "Value: " << node.node().child_value() << endl;
            std::cout << "Name: " << node.node().name() << endl;

        }

    _getch();
    return 0;
}

here is the output:

Attribute Href: http://www.google.com
Value: Link Till here
Name: a

I hope I was clear enough, Thanks in advance

share|improve this question

3 Answers 3

up vote 2 down vote accepted

That's how XML works. You can't embed < or > right in your values. Escape them (e.g. using HTML entities like &lt; and &gt;) or define a CDATA section.

share|improve this answer

My psychic powers tell me you want to know how to get the concatenated text of all children of the node (aka inner text).

The easiest way to do that is to use XPath like that:

pugi::xml_node node = doc.child("mesh").child("bounds").child("b");
string text = pugi::xpath_query(".").evaluate_string();

Obviously you can write your own recursive function that concatenates the PCDATA/CDATA values from the subtree; using a built-in recursive traversing facility, such as find_node, would also work (using C++11 lambda syntax):

string text;
text.find_node([&](pugi::xml_node n) -> bool { if (n.type() == pugi::node_pcdata) result += n.value(); return false; });

Now, if you want to get the entire contents of the tag (aka outer xml), you can output a node to string stream, i.e.:

ostringstream oss;
node.print(oss);
string xml = oss.str();

Getting inner xml will require iterating through node's children and appending their outer xml to the result, i.e.

ostringstream oss;
for (pugi::xml_node_iterator it = node.begin(); it != node.end(); ++it)
    it->print(oss);
string xml = oss.str();
share|improve this answer

I've struggled a lot with the issue of parsing subtree including all elements and sub-nodes - the easiest way is almost what shown here:

You should use this code:

ostringstream oss;
oNode.print(oss, "", format_raw);
sResponse = oss.str();

Instead of oNode use the node that you want, if needed use pugi:: before every function.

share|improve this answer

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.