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HI in my application i have photos videos etc, in the case of image i done the scaling ,but i get out of memory exception in sometimes, how can i handle the out of memory exception efficently.

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5 Answers 5

up vote 18 down vote accepted

Check that the image size is smaller than the available memory before attempting to load it. So the most efficient way to handle OutOfMemoryException is to architecture your application in such a way that it never attempts to load lots of data into memory in order to avoid the exception.

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OutOfMemory can't be handled. What do you think?

The device memory is full, you got the exception and then you magically do something which remove the exception and you now have more heap. That is impossible, you know.

OutOfMemory must be prevented, not handled after occurrence.

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7  
damn this sounds so intense –  what is sleep Sep 26 '13 at 15:36
3  
Probably the majority of cases where one gets an OutOfMemory involve Bitmap loading (as in this question) and it is simply not true that there is nothing you can do. In many cases, you can't load a N megabyte image - but you can still load a N/4 megabyte image. Use BitmapFactory.Options with an inSampleSize >= 1, and do inSampleSize *= 2 before each retry. –  Jon Shemitz Oct 7 '13 at 22:20
5  
Actually this post is incorrect. The device memory is NOT necessarily full. An OutOfMemory occurs when the amount of memory requested cannot be allocated. If there is 40MB available and you try to allocate 45MB, you get OutOfMemory, but you still have 40MB available. –  xtempore Oct 10 '13 at 23:35

There is a method in Activity which is called when the device is coming low of memory, but this can only be used to trigger cache files cleaning. This does not mean that your application process is coming out of memory.

You could also add a try catch block to catch Error or OutOfMemoryError, but this would be too late.

Handling large numbers of Bitmaps or large Bitmaps is really difficult in android applications. You'll find some tips on this subject in this article from Romain Guy.

You can also take care of loading bitmaps directly to the resolution you need by specifying a sample size in the BitmapFactory.options you provide to BitmapFactory.decode*() methods.

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1  
Notice that onLowMemory is called just when another application needs more memory. Not when your application is out of memory. So onLowMemory will not be invoked when OutOfMemoryError is thrown. –  Robert Dec 4 '12 at 13:41

In my application, I just catch the OOM exception, and load the image after ten minutes.It works. I suppose it is not a good solution, Is there any one tell the potential impact to my application about this solution?

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if u wanna ask question,Then ask to stack overflow "ASK QUESTION" Page don't ask Question as an Answer. –  i.n.e.f May 23 at 7:37

I have started to try this routine which loads a jpeg into an ImageView and checks for Out of Memory and re-scales until it fits.

 static public boolean tryJpegRead(ImageView imageView, File fn){
 if (!fn.exists()){ 
     Log.d("ANDRO_ASYNC",String.format("missing file %s",fn.getAbsolutePath()));
     return false;
 }
 BitmapFactory.Options o = new BitmapFactory.Options();
    for (int i = 1; i<10; i++){
        o.inSampleSize = i;
        o.inJustDecodeBounds = true;
        BitmapFactory.decodeFile(fn.getAbsolutePath(), o);
        int h = o.outHeight;
        int w = o.outWidth;
        Log.d("ANDRO_ASYNC",String.format("going in h=%d w=%d resample = %d",h,w,o.inSampleSize));
        o.inJustDecodeBounds = false;
        try{
            imageView.setImageBitmap(
                Bitmap.createScaledBitmap(
                        BitmapFactory.decodeFile(fn.getAbsolutePath(), o), 
                        w, 
                        h, 
                        true)); 
            return true; // only happens when there is no error
        }catch(OutOfMemoryError E){
            Log.d("ANDRO_ASYNC",String.format("catch Out Of Memory error"));
    //      E.printStackTrace();
            System.gc();
        }           
    }
    return false;
}
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