问题
I'd like to pass current page URL as an attribute to XSL template. As far as I understood it should be passed as a parameter, and then used as an attribute.
I use PHP to load XML & XSL files:
<?php
$xml = new DOMDocument;
$xml->load('main.xml');
$xsl = new DOMDocument;
$xsl->load('blocks/common.xsl');
$proc = new XSLTProcessor;
$proc->importStyleSheet($xsl);
echo $proc->transformToXML($xml);
?>
How should this code be altered to pass URL as a parameter named "current-url", for example?
I've seen a lot of similar questions here with different solutions, but none has worked for me so far. Thank you in advance.
回答1:
Maybe you already tried this approach, but in case if not:
<?php
$params = array('current-url' => $_SERVER['REQUEST_URI']);
$xml = new DOMDocument;
$xml->load('main.xml');
$xsl = new DOMDocument;
$xsl->load('blocks/common.xsl');
$proc = new XSLTProcessor;
$proc -> registerPHPFunctions();
$proc->importStyleSheet($xsl);
foreach ($params as $key => $val)
$proc->setParameter('', $key, $val);
echo $proc->transformToXML($xml);
?>
In the xsl, add above the templates
<xsl:param name="current-url" />
In the templates, you can get the value using
<xsl:value-of select="$current-url" />
If not already there, you have to add xmlns:php="http://php.net/xsl" into the xsl:stylesheet declaration.
For reference: registerPHPFunctions() and a solution you maybe already checked on SO: Passing variables to XSLT
来源:https://stackoverflow.com/questions/25826220/pass-url-as-a-parameter-to-xsl