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I am using the below shown snippet of choice element in my Mule 3.3 flow. XSL Transformer feeds the choice element. XSL Transformer is supposed to return a String (name of an entity) and on the basis of string value, I use choice router to push it to different jms queues.

<flow name="ProcessOrder">
    .
    .  
    <xm:xslt-transformer xsl-file="xsl/getEntity.xslt" returnClass="java.lang.String"/>
    <choice>
        <when expression="payload.contains('ABC')">             
            <jms:outbound-endpoint queue="order.queue1" />
        </when>
        <when>
        </when>
        <otherwise>         
        </otherwise>
    </choice>
</flow>

XSL Transformer returns this payload <?xml version="1.0" encoding="UTF-8"?>ABC

My question is how do I compare the String returned. I don't think payload.contains() is the best way to do this, though it solves my purpose and also we won't have matching entities returned which are ever like ABCxy but still this is not a full proof solution.

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3 Answers 3

up vote 1 down vote accepted

Add the omit-xml-declaration part in your xslt as shown below. This will give you the raw string without the prolog.

<xsl:stylesheet version="2.0"
xmlns:xsl="http://www.w3.org/1999/XSL/Transform" 
xmlns:xsd="http://www.w3.org/2001/XMLSchema"    >

<xsl:output omit-xml-declaration="yes" indent="yes" />

<xsl:template match="/">
...
...

This will give

"ABC" as output instead of     "<?xml version="1.0" encoding="UTF-8"?>ABC"

Then in the expression use it like

<when expression="#[message.payload.contains('ABC')]">

This way it should work.

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@Learner. Please let me know if the solution is working for you. –  user1760178 Jan 29 '13 at 16:09
    
Your pointer for omit-xml-declaration attribute helped me to get rid of prolog. Thank you for your answer. Though I ended up using #[message.payload == 'ABC'] instead of #[message.payload.contains('ABC')] as that's a more accurate evaluation. contains is more of a substring function. –  Learner Jan 29 '13 at 16:11
    
Good that you got your solution. I gave it as contains because i thought you were looking for substring function in the conditional expression. –  user1760178 Jan 29 '13 at 16:13
    
Did already. Thanks –  Learner Jan 29 '13 at 16:16

Maybe this is what you are looking for:

<when evaluator="xpath" expression="/result/" ...

Obviously, your XSLT will need to retur a well-formed XML document with the desired result in an XML element that is neatly accessible by XPath.

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I have to use XSL Transformer. XPath doesn't offer the programming capability that I need here. Thanks for looking though –  Learner Jan 29 '13 at 15:40
1  
oh I see what you're saying. You mean edit XSLT to return XML instead of String and then use XPath. Isn't this an overkill? –  Learner Jan 29 '13 at 15:43
    
Not really. The output of XSLT is usually XML, and by using XPath, you will be getting the exact element you want, from the right structure. If you need to expand this further, it will be readily expandable. However, I am not sure whether the return type will remain String or would be another type - would need to try it out. –  Akber Choudhry Jan 29 '13 at 16:10
    
From Mule In Action 2ed, The XSL transformer is extremely versatile as far as source and return types are concerned. This transformer also infers the best matching return type based on the input type (or the returnClass attribute if it has been set). –  Learner Jan 29 '13 at 16:14

On Mule website they suggest to use expression-splitter-router evaluator this is an example from mule website of how to use it:

FruitBowl containing an apple, an orange, and two bananas. When Mule receives this object, we want to route the fruit to different locations: the AppleService, BananaService, and OrangeService.

<service name="Distributor">
    <inbound>
       <jms:inbound-endpoint queue="distributor.queue"/>
    </inbound>
    <outbound>
        <!-- FruitBowl.getFruit() List -->
        <expression-splitter-router evaluator="bean" expression="fruit">
            <vm:outbound-endpoint path="apple.service.queue">
                <payload-type-filter expectedType="org.mule.tck.testmodels.fruit.Apple"/>
            </vm:outbound-endpoint>
            <vm:outbound-endpoint path="banana.service.queue">
                <payload-type-filter expectedType="org.mule.tck.testmodels.fruit.Banana"/>
            </vm:outbound-endpoint>
            <vm:outbound-endpoint path="orange.service.queue">
                <payload-type-filter expectedType="org.mule.tck.testmodels.fruit.Orange"/>
            </vm:outbound-endpoint>
        </expression-splitter-router>
    </outbound>
</service>

Hope that helps

share|improve this answer
    
This is a good example but will not work in my case as returned object from XSLT will always be String and my intention is not to split the payload but push it to a specific queue based on payload content. –  Learner Jan 29 '13 at 15:53
    
FYI In Mule 3, services are deprecated in favor of flows. –  David Dossot Jan 29 '13 at 17:23
    
I agree with you David but the example I took out from mule 3.3 user guide here mulesoft.org/documentation/display/MULE3USER/Using+Expressions. They should update their documentations :) –  justMe Jan 29 '13 at 17:29

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