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'm trying to use Android's animation framework to have my ImageView move in a diamond pattern. Here's my animation.xml:

<set xmlns:android="http://schemas.android.com/apk/res/android" android:shareInterpolator="true">
<translate 
    android:fromXDelta="40%p" android:toXDelta="90%p" 
    android:fromYDelta="10%p" android:toYDelta="40%p" 
    android:duration="500" android:startOffset="0"/>
<translate 
    android:fromXDelta="90%p" android:toXDelta="40%p" 
    android:fromYDelta="40%p" android:toYDelta="90%p" 
    android:duration="500" android:startOffset="500"/>
<translate 
    android:fromXDelta="40%p" android:toXDelta="10%p" 
    android:fromYDelta="90%p" android:toYDelta="40%p" 
    android:duration="500" android:startOffset="1000"/>
<translate 
    android:fromXDelta="10%p" android:toXDelta="40%p" 
    android:fromYDelta="40%p" android:toYDelta="10%p" 
    android:duration="500" android:startOffset="1500"/>
</set>

My layout:

<FrameLayout xmlns:android="http://schemas.android.com/apk/res/android"
android:orientation="vertical" android:layout_width="match_parent" android:layout_height="match_parent">
    <ImageView
        android:id="@+id/img"  
        android:layout_width="wrap_content" 
        android:layout_height="wrap_content"
        android:src="@drawable/icon"/>
</FrameLayout>

And my onStart:

protected void onStart() {
    super.onStart();

    ImageView img = (ImageView)findViewById(R.id.img);
    Animation a = AnimationUtils.loadAnimation(this, R.anim.diamond);
    img.startAnimation(a);
}

When I start my application all I see is a blank screen for 2 seconds then my image pops into the upper-left corner of the screen. If I remove all but one of the translate animations I will see the image move in a diagonal line.

I would prefer to use XML to define the animation and not Java.

Does anyone have any insight into how I can see the entire animation?

-Dan

share|improve this question
    
It appears it has something to do with using "%p". If I change "%p" to "%" then the entire animation works but is now confined to a much smaller part of the screen. According to the doc "%" is in relationship to the object and "%p" is in relation to the object's parent which is really what I want. Which explains why it is only doing the animation to a small box. –  Dan Feb 11 '11 at 19:00
    
To further clarify, I would like to use XML to define my animation in relation to the parent of the ImageView I am animating. I will not accept any answer that says the framework is broken, nor will I accept an answer that requires the animation be defined in Java. –  Dan Feb 15 '11 at 13:32

3 Answers 3

up vote 10 down vote accepted
+50

The animation attributes are relative to where they are when they start. This is probably a lot closer to what you want:

<?xml version="1.0" encoding="utf-8"?> 
<set xmlns:android="http://schemas.android.com/apk/res/android" android:shareInterpolator="true">
<translate 
    android:fromXDelta="40%p" android:toXDelta="90%p" 
    android:fromYDelta="10%p" android:toYDelta="40%p" 
    android:duration="500" android:startOffset="0"/>
<translate 
    android:fromXDelta="0%p" android:toXDelta="-50%p" 
    android:fromYDelta="0%p" android:toYDelta="50%p" 
    android:duration="500" android:startOffset="500"/>
<translate 
    android:fromXDelta="0%p" android:toXDelta="-30%p" 
    android:fromYDelta="0%p" android:toYDelta="-50%p" 
    android:duration="500" android:startOffset="1000"/>
<translate 
    android:fromXDelta="0%p" android:toXDelta="30%p" 
    android:fromYDelta="0%p" android:toYDelta="-30%p" 
    android:duration="500" android:startOffset="1500"/>
</set>
share|improve this answer
    
Excellent! It worked! Thanks for your quick response! –  Dan Feb 15 '11 at 14:37
    
Hi Reuben Scratton, i want to pause this animation on button click and resume on click again. is it possible? –  Deepak May 1 '12 at 6:36

Try this:

Animation anim = AnimationUtils.loadAnimation(getApplicationContext(), R.anim.diamond);
findViewById(R.id.img).setAnimation(anim);
anim.start();

You should also probably change the animations to load one after the other. I think that set you have created will try to play all the animations at once, and that won't work very well.

Use an animationListener like this:

anim.setAnimationListener(new Animation.AnimationListener() {

        public void onAnimationStart(Animation animation) {
        }

        public void onAnimationEnd(Animation animation) {
            Animation anim = AnimationUtils.loadAnimation(getApplicationContext(), R.anim.diamond2);
            findViewById(R.id.img).setAnimation(anim);
            anim.start();
        }

        public void onAnimationRepeat(Animation animation) {
        }
    });
share|improve this answer
    
This had no effect for me. According to the doc (developer.android.com/guide/topics/resources/…), I should be able to specify a startOffset on an animation which should allow me to 'chain' the animation in the way I have shown. –  Dan Feb 11 '11 at 14:43

Use this one it works, i hve tested it

<set xmlns:android="http://schemas.android.com/apk/res/android" android:shareInterpolator="true">
    <translate 
        android:fromXDelta="40%p" android:toXDelta="90%p" 
        android:fromYDelta="10%p" android:toYDelta="40%p" 
        android:duration="500" android:startOffset="0"
        />
    <translate 
        android:fromXDelta="0%p" android:toXDelta="-40%p" 
        android:fromYDelta="0%p" android:toYDelta="40%p" 
        android:duration="500" android:startOffset="500"/>
    <translate 
        android:fromXDelta="0%p" android:toXDelta="-40%p" 
        android:fromYDelta="0%p" android:toYDelta="-40%p" 
        android:duration="500" android:startOffset="1000"/>
    <translate 
        android:fromXDelta="0%p" android:toXDelta="40%p" 
        android:fromYDelta="0%p" android:toYDelta="-40%p" 
        android:duration="500" android:startOffset="1500"/>
    </set>
share|improve this answer

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.