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 am using below code for using linkbutton in flex datagrid

<mx:DataGridColumn headerText="Case ID" width="80">
                    <mx:itemRenderer>
                        <fx:Component>
                            <mx:Canvas>
                                <mx:LinkButton id="lnkCaseId" click="outerDocument.lnkCaseIdClick(event)" label="{data.caseId}" textDecoration="underline" color="#0052A5">
                                </mx:LinkButton>
                            </mx:Canvas>
                        </fx:Component>
                    </mx:itemRenderer>
                </mx:DataGridColumn><br/>

now on link button click i want linkbutton label name and selected row inside lnkCaseIdClick method, how can i do this?
thanks.

share|improve this question
    
i hv got linkbutton label using 'event.currentTarget.label.toString();' how can i get selected row? –  user594979 May 12 '11 at 13:00

2 Answers 2

up vote 1 down vote accepted

Here is sample according to explanation in @J_A_X but its using default MouseEvent You can extent *MouseEvent* Class to hold your custom data

<?xml version="1.0" encoding="utf-8"?>
<mx:Application 
    xmlns:mx="http://www.adobe.com/2006/mxml" layout="absolute"
    click="{clicked(event)}">
    <mx:Script>
        <![CDATA[
            import mx.controls.LinkButton;
            import mx.core.UIComponent;
            import mx.controls.Alert;
            public function clicked(event:MouseEvent):void
            {
                if (event.target is LinkButton)
                {
                    var innerLinkButon:LinkButton = event.target as LinkButton;
                    Alert.show("Application : "+innerLinkButon.label);
                }
            }
        ]]>
    </mx:Script>
    <mx:DataGrid id="grid">
        <mx:dataProvider>
            <mx:ArrayCollection>
                <mx:Array>
                    <mx:Object label="AAAA"/> 
                    <mx:Object label="BBBB"/>
                    <mx:Object label="CCCC"/>
                    <mx:Object label="DDDD"/>
                </mx:Array>
            </mx:ArrayCollection>
        </mx:dataProvider>
        <mx:columns>
            <mx:DataGridColumn id="columnA" headerText="columnA" dataField="@label">
                <mx:itemRenderer>
                    <mx:Component>
                        <mx:LinkButton click="{clicked(event)}" label="{data.label.toString()}">
                            <mx:Script>
                                <![CDATA[
                                    import mx.controls.Alert;

                                    public function clicked(event:MouseEvent):void
                                    {
                                        Alert.show("linkButton");
                                    }

                                ]]>
                            </mx:Script>
                        </mx:LinkButton>
                    </mx:Component>
                </mx:itemRenderer>
            </mx:DataGridColumn>
        </mx:columns>
    </mx:DataGrid>
</mx:Application>

Hopes that helps

share|improve this answer

Don't use outerDocument.lnkCaseIdClick(event), it's a horrible practice since you're assuming the function will always be there and makes your code coupled.

You should look into bubbling a custom event that holds the data you need from the item renderer, and then from your container, add the event listener for your custom event.

share|improve this answer
    
thanks for this, now i am using this code(custom event )lnkCaseId.addEventListener(MouseEvent.CLICK,lnkCaseIdClick); outside the datagrid,it throws me an error linkCaseId is not accessible. how can i access linkCaseId outside the datagrid. –  user594979 May 13 '11 at 5:18
    
You don't, you add the event listener on the grid and the event bubbles up from the item renderer to the grid. Also, MouseEvent.ClICK is not a custom event. –  J_A_X May 13 '11 at 13:37

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.