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I wanted to animate a rectangle so that it follows a given path which worked thus far using animateMotion. This is what I have got:

<svg xmlns="http://www.w3.org/2000/svg" version="1.1">
<g>
   <rect height="40" width="40" style="fill:#777; stroke:none;"/>
   <animateMotion fill="freeze" path="M 0 0 Q 190 160 150 70 T 200 150 T 300 200 T 200 200" dur="3.14159s" repeatCount="indefinite"/>
</g>
<path d="M 0 0 Q 190 160 150 70 T 200 150 T 300 200 T 200 200" style="fill:none;stroke:#F00;stroke-width:5"/>

Now my question: How do I get the rectangle to follow the path (already achieved) with the center of the rectangle (20 20) always being on the path? Can this be achieved with the means SVG offers?

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1 Answer 1

up vote 2 down vote accepted

Sure, just add a transform to the rect.

<svg xmlns="http://www.w3.org/2000/svg" version="1.1">
<g>
   <rect transform="translate(-20,-20)" height="40" width="40" style="fill:#777; stroke:none;"/>
   <animateMotion fill="freeze" path="M 0 0 Q 190 160 150 70 T 200 150 T 300 200 T 200 200" dur="3.14159s" repeatCount="indefinite"/>
</g>
<path d="M 0 0 Q 190 160 150 70 T 200 150 T 300 200 T 200 200" style="fill:none;stroke:#F00;stroke-width:5"/>
</svg>

The translate acts to move the rect origin from 0,0 to the rectangle centre.

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How cool would your answer be, if you would just add a link to an active fiddle with your working solution. –  Morgan Wilde Nov 8 '12 at 8:30
    
Less cool apparently as links to jsfiddle seem to generate messages about not doing that. –  Robert Longson Nov 8 '12 at 10:03
    
It worked, thank you. But why? I know what the translate part usually does but do not understand why it works in this case and does what I intended to do. –  PattaFeuFeu Nov 8 '12 at 10:06
    
@RobertLongson how so? Your reply seems to make a point, that you've received feedback suggesting not to add fiddle links, is that right? Sound rather bizarre if that's the case... –  Morgan Wilde Nov 8 '12 at 11:01
    
The text suggests that jsfiddle links are not permanent and they'd like to have a complete answer to each question answer on this site. I don't mind personally. –  Robert Longson Nov 8 '12 at 11:13

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