Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I displaying multiple p:datatable 's through ui:repeat, the following code snippet illustrates what I am doing:

<ui:repeat id="searchTables"
    value="#{searchBean.mapKeys}"
    var="mapKeys">
         <p:dataTable id="recordTable"
            value="#{searchBean.resultMap[mapKeys].resultList}"
            var="recordTable"
            paginator="true"
            rows="10">
                 <f:facet name="header">
                      <h:outputText value="#{searchBean.resultMap[mapKeys].name}"/>
                 </f:facet>
                    <p:columns value="#{searchBean.resultMap[mapKeys].resultColumns}"
                               var="column"
                               columnIndexVar="colIndex">
                        <f:facet name="header">
                            <p:outputPanel>
                                #{column.header}
                            </p:outputPanel>
                        </f:facet>
                        <h:outputText value="#{recordTable[column.property]}"/><br/>
                    </p:columns>
         </p:dataTable>
 </ui:repeat>

I need each individual datatable to have its own paginator, however when my page is displayed only the first datatable gets the paginator and this paginator controls all the other displayed DataTables pages..

Thanks for your attention!

share|improve this question

2 Answers 2

up vote 2 down vote accepted

The only way I found was to use two p:datatable tags, the parent one with only one column. I couldn't make it work with p:dataList. I guess p:dataList is extending the same bogus class.

Should work with this:

<p:datatable id="searchTables"
    value="#{searchBean.mapKeys}"
    var="mapKeys">
    <p:column>
         <p:dataTable id="recordTable"
            value="#{searchBean.resultMap[mapKeys].resultList}"
            var="recordTable"
            paginator="true"
            rows="10">
                 <f:facet name="header">
                      <h:outputText value="#{searchBean.resultMap[mapKeys].name}"/>
                 </f:facet>
                    <p:columns value="#{searchBean.resultMap[mapKeys].resultColumns}"
                               var="column"
                               columnIndexVar="colIndex">
                        <f:facet name="header">
                            <p:outputPanel>
                                #{column.header}
                            </p:outputPanel>
                        </f:facet>
                        <h:outputText value="#{recordTable[column.property]}"/><br/>
                    </p:columns>
         </p:dataTable>
    </p:column>     
 </p:dataTable>
share|improve this answer
    
OMG, it worked, thanks a lot man –  camiloqp Mar 8 '11 at 18:27

This is likely related to JSF issue 1830.

Your best bet is to replace ui:repeat by another repeater which does its UINamingContainer job better, for example a <p:dataList> or even another <p:dataTable>. The list bullets of <p:dataList> can be removed by CSS list-style-type: none.

If that also doesn't work, then it's maybe a bug in PrimeFaces <p:dataTable> itself.

share|improve this answer
    
Thanks for your answer, neither of the proposed solutions worked, I guess its a bug with <p:dataTable> itself :( –  camiloqp Feb 9 '11 at 18:09
    
I wonder why <c: forEach> isnt working either.. –  camiloqp Feb 9 '11 at 20:33
    
This doesn't take the client ID's into account at all. It's not an UINamingContainer component. Besides, it get executed during view build time only, not during view render time. –  BalusC Feb 9 '11 at 20:34
    
Balus hi, when assigning <p:dataTable id="recordTable"...> am I before hand assigning a unique ID to all the tables generated by ui:repeat?? If so, how can I assign a dynamic ID or similiar? Thanks –  camiloqp Feb 9 '11 at 22:28
    
Tried a dynamic ID for both ui:repeat and p:datalist and p:datatable none worked :( –  camiloqp Feb 10 '11 at 14:03

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.