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<apex:outputLink value="/!{opportunity.id}">{!opportunity.Name}</apex:outputLink>

I am creating 2 pages in VF. One page to display a list of custom object records from a dynamic search. This is complete.

I need to now create a custom VF page to display a single record information when a user clicks on a link on the list page. I know we can use an output link like the one shown above.

Assuming I have built the detail page (assume its path is "apex/customDetailPage"), how would I go about modifying this link. Because my detail page will need the selected record id passed to it I suppose.

share|improve this question
    
Thanks in advance for your help. – Richard N Apr 12 '12 at 22:23
up vote 4 down vote accepted

You can do it just like this:

<apex:outputLink value="/apex/customDetailPage?id={!opportunity.id}">
  {!opportunity.Name}
</apex:outputLink>

Assuming that your custom page checks for the id parameter to establish which record it should be working with.

You can also use the $Page global variable option as described here which should mean it'll look something like this:

<apex:outputLink value="{!$Page.customDetailPage}?id={!opportunity.id}">
  {!opportunity.Name}
</apex:outputLink>
share|improve this answer
    
Thanks, this will help me. – Richard N Apr 13 '12 at 22:59

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