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I'm programing in sharepoint and I need to get the current url in my Content Query WebPart's Sytle file(ItemStyle.xsl or ContentQueryMain.xsl) in order to add the querystring to the url of a link in my pages.

Is it possible to get the URL of the page in XSL similar to javascript's location.href ?

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Not in XSLT 1.0. However, you can pass this URL as a parameter to the transformation and use this parameter inside the transformation. –  Dimitre Novatchev Dec 4 '12 at 14:07
    
How to pass the parameter to the transformation? It is my first time to use xSLT for customizing the CQWP –  JacobChan Dec 5 '12 at 1:26
    
The way to pass external parameters to the transformation is implementation-dependent. I suspect that Sharepoint uses the .NET XslCompiledTransform. If so, you need to read this about XsltArgumentList.AddParam(): msdn.microsoft.com/en-us/library/… However, if it uses MSXML, then you need to read the related MSXML documentation. Also, Sharepoint itself may have a wrapper around the XSLT processor and its own rules for passing parameters -- again, you need to read the relevant Sharepoint documentation. –  Dimitre Novatchev Dec 5 '12 at 2:39

1 Answer 1

try This

We will be adding this namespace to your XSL file, you can add it to either Main CQWP xsl or ItemStyle.xsl, incase you add it to Main XSL pass it down to Item Template as parameter. I usually add to Item Style XSL .

Add NameSpace xmlns:ddwrt=”http://schemas.microsoft.com/WebParts/v2/DataView/runtime” at top Add a parameter “PageUrl “ right below your namespace definitions

  1. Concat this parameter as part in your Display URL as part Source query string parameter

Thanks

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Can it get the current url? –  JacobChan Dec 24 '12 at 6:19
    
Is it only works in Data View Web part? –  JacobChan Dec 29 '12 at 2:06
    
It works for me thanks. –  Ilya Jul 8 '14 at 15:48

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