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I'm using Flash Builder 4 and am in the process of learning.

The short and simple explanation is, I want a tab navigator that has tabs that look like this:

First TabMiddle Tabs

I know I could do this using an image-based skin, but I figured (and could be wrong) that programmatically drawing the shape would be better in terms of scalability.

As long as I get the result I'm looking for, I guess I don't really care if it's mx or spark. I tried doing this:

Main App:

<mx:ButtonBar dataProvider="{vsTabNav}" firstButtonStyle="firstButtonStyle"/>

CSS File:

.firstButtonStyle { skinClass:ClassReference("assets.skins.ButtonBarFirstButtonSkin"); }

ButtonBarFirstButtonSkin.as:

package assets.skins
{
    import flash.display.Graphics;
    import mx.skins.halo.ButtonBarButtonSkin;
    import mx.graphics.RectangularDropShadow;

    public class ButtonBarFirstButtonSkin extends ButtonBarButtonSkin
    {
        private var dropShadow:RectangularDropShadow;

        public function ButtonBarFirstButtonSkin()
        {
            super();
        }

        override protected function updateDisplayList(unscaledWidth:Number, unscaledHeight:Number):void 
        {
            super.updateDisplayList(unscaledWidth, unscaledHeight);

            var cornerRadius:Number = getStyle("cornerRadius");
            var backgroundColor:int = getStyle("backgroundColor");
            var backgroundAlpha:Number = getStyle("backgroundAlpha");
            graphics.clear();

            cornerRadius = 10;
            backgroundColor = 0xFF0000;
            backgroundAlpha = 1;

            // Background
            drawRoundRect(0, 0, unscaledWidth, unscaledHeight, {tl:1, tr:cornerRadius, bl:1, br:1}, backgroundColor, backgroundAlpha);

            // Shadow
            if (!dropShadow)
                dropShadow = new RectangularDropShadow();

            dropShadow.distance = 8;
            dropShadow.angle = 45;
            dropShadow.color = 0;
            dropShadow.alpha = 0.4;
            dropShadow.tlRadius = 1;
            dropShadow.trRadius = cornerRadius;
            dropShadow.blRadius = 1;
            dropShadow.brRadius = 1;
            dropShadow.drawShadow(graphics, 0, 0, unscaledWidth, unscaledHeight);
        }

    }
}

This should mean that the first button will be red and will have a very round top-right corner. Instead, I just get the default button. Not sure what I'm doing wrong there, but if that's not the best solution, I would love some help. Thanks!

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2 Answers 2

up vote 1 down vote accepted

First, have a look at http://www.adobe.com/devnet/flex/articles/flex4_skinning.html

Then, you should realize, you'll be better off creating first skins for your ButtonBarButtons and make sure your button bar uses them for its buttons.

Also, you can create the shapes with the Path class. Following is an example that creates similar shapes to yours:

<?xml version="1.0" encoding="utf-8"?>
<s:Application xmlns:fx="http://ns.adobe.com/mxml/2009" 
               xmlns:s="library://ns.adobe.com/flex/spark" 
               xmlns:mx="library://ns.adobe.com/flex/mx" minWidth="955" minHeight="600">
    <s:Path x="10" y="10"
            data="M 0 2 V 18 H 200 Q 190 3 170 0 H 2 L 0 2 Z" 
            width="200" height="20"  >
        <s:fill>
            <s:LinearGradient rotation="90">
                <s:GradientEntry color="0xFFFFFF" />
                <s:GradientEntry color="0xFDFDFD" ratio="0.6" />
                <s:GradientEntry color="0x8A8A8A" ratio="1" />
            </s:LinearGradient>
        </s:fill>
        <s:stroke>
            <s:SolidColorStroke color="0x000000" />
        </s:stroke>
    </s:Path>

    <s:Path x="215" y="10"
            data="M 30 0 Q 10 0 0 20 H 200 Q 190 3 170 0 H 30 Z" 
            width="200" height="20"  >
        <s:fill>
            <s:LinearGradient rotation="90">
                <s:GradientEntry color="0x8f8f8f" />
                <s:GradientEntry color="0x878787" ratio="0.6" />
                <s:GradientEntry color="0x5d5d5d" ratio="1" />
            </s:LinearGradient>
        </s:fill>
        <s:stroke>
            <s:SolidColorStroke color="0x000000" />
        </s:stroke>
    </s:Path>
</s:Application>

UPDATE: If you want scaling, you can put the Path element into a Graphic element, and setup its scaleGrid properties:

<s:Graphic scaleGridTop="1" scaleGridBottom="19" scaleGridLeft="10" scaleGridRight="170"
           width="150" height="15"
           x="10" y="10" 
           >
    <s:Path 
            data="M 0 2 V 18 H 200 Q 190 3 170 0 H 2 L 0 2 Z" 
            width="200" height="20" >
        <s:fill>
            <s:LinearGradient rotation="90">
                <s:GradientEntry color="0xFFFFFF" />
                <s:GradientEntry color="0xFDFDFD" ratio="0.6" />
                <s:GradientEntry color="0x8A8A8A" ratio="1" />
            </s:LinearGradient>
        </s:fill>
        <s:stroke>
            <s:SolidColorStroke color="0x000000" />
        </s:stroke>
    </s:Path>
</s:Graphic>
share|improve this answer
    
Thanks! This is exactly what I was looking for. I wasn't aware of s:Path. I thought I had to use Actionscript to draw an irregular shape. And a special thanks for doing all the work for me :-) –  Travesty3 Jul 8 '11 at 16:02
    
Is there a way for me to specify scaling regions for this, so that the curved part stretches vertically, but not horizontally? –  Travesty3 Jul 8 '11 at 16:41
1  
See the updated answer for scaling. –  bug-a-lot Jul 11 '11 at 7:37
    
Thanks again. I figured it out a while after my last comment, I did the same thing, but I just used a s:Group with scaleGrid settings. –  Travesty3 Jul 11 '11 at 12:35

If that is all you want to achieve - can't you just specify the corner radius values in the CSS style and move on (without a custom skin)?

:)

share|improve this answer
    
How do I make the bottom corners pointed, like in the images in the original post, with corner radius? –  Travesty3 Jul 8 '11 at 12:15
    
cornerRadius:10; focusRoundedCorners:tr; (only round one corner) –  Nate Jul 8 '11 at 14:50
    
Thanks, but that doesn't help me with the acute angle on the bottom corner(s). –  Travesty3 Jul 8 '11 at 15:52

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