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Is there any way to perform a LIKE operation with XQuery in the same way as with SQL?

I wan't to construct some "startswith", "endswith" and "contains"-expressions.

Example of what I want to achieve:

for $x in /user where $x/firstname LIKE '%xxx' return $x
for $x in /user where $x/middlename LIKE 'xxx%' return $x 
for $x in /user where $x/lastname LIKE '%xxx%' return $x

Is there any way to achieve this in XQuery?

EDIT:

Got the answer to the question above. New problem:

Would there be any way to do this the opposite way around? I would like to run those queries with the sql equivalent NOT LIKE operator. Is this possible? It has to be in an FLWOR-expression

EDIT2:

Solved the problem. You can run fn:not(starts-with('123', '1')) and it returns false.

share|improve this question
    
I'm puzzled by the constraint "it has to be in a FLWOR expression". What's wrong with the simpler formulation /user[matches(firstname, '.*xxx')]? Simple path expressions are often more concise than FLWOR expressions. – Michael Kay Jan 26 at 8:10
    
This is a useful question, which you seemed to have answered yourself, but not provided the output. Can you post your answers here please ? Were you able to use the syntax of the LIKE comparator string or did you have to translate it to an xQuery specific comparison string? – Ben May 18 at 17:09
up vote 11 down vote accepted

XPath 2.0 and XQuery 1.0 (as standardized by the W3C) have regular expression support with the matches function http://www.w3.org/TR/xpath-functions/#func-matches:

/user[matches(firstname, 'xxx$')]

And of course there are functions like starts-with and contains (both in XPath 1.0/2.0), and ends-with (only in XPath 2.0) that might suffice.

share|improve this answer
    
That solves the problem. – jorgen.ringen Feb 9 '11 at 12:44
    
@Martin Honnen: +1 Good answer. Edited because last sentence might be confusing. – user357812 Feb 9 '11 at 16:44
3  
XPath 1.0 equivalent of ends-with XPath 2.0 function: substring($string, string-length($string) - string-length($pattern) + 1) = $pattern – user357812 Feb 9 '11 at 16:47
    
+1. Correct one. – Flack Feb 9 '11 at 18:31
1  
@JorgenR. inverse with not() boolean function. – Flack Feb 10 '11 at 15:07

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