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I'm new to all the memory management subject, so there are a lot of things I don't understand.
I'm trying to cache an image in my app, but I'm having troubles with its memory consumption:

All of the Bitmap Chaching code is pretty much copy-pasted from here: http://developer.android.com/training/displaying-bitmaps/index.html

I debugged the code and checked the heap size in the DDMS view in eclipse, and there is about 15mb jump after these code lines:

        options.inJustDecodeBounds = false;
        return BitmapFactory.decodeResource(res, resId, options);

in the "decodeSampledBitmapFromResource" method.

The image is 1024x800, 75kb jpg file. According to what I've already seen on the internet, the amount of memory this image is supposed to take is about 1024*800*4(Bytes per pixel)=3.125mb

All of the threads regarding this subject don't say why it's taking much more memory than it should. Is there a way to cache one image with a reasonable amount of memory?

EDIT

I tried using the decodeFile method suggested on @ArshadParwez's answer below. Using this method, after the BitmapFactory.decodeStream method the memory is increased by only 3.5mb - problem solved, sort of, but I want to cache bitmaps directly from the resource.

I noticed that during the decodeResource method there are 2 memory "jumps" - one of about 3.5mb - which is reasonable, and another strange one of 14mb. What are those 14mb used for and why does this happen?

share|improve this question
    
How about caching it to the file system instead of active memory? –  Paul Nikonowicz Aug 15 '13 at 15:07
    
@PaulNikonowicz even if it solves the problem, its presumable that the secondary memory is of flash or similar type, writing frequently to it will reduce its life-time, what is not the case for primary memory. –  Diego C Nascimento Aug 15 '13 at 15:16
    
4 bytes is for ARGB4444. Are you sure it's not argb8888? –  gunar Aug 15 '13 at 15:16
    
@DiegoCNascimento secondary memory does not necessarily mean the flash card with an Android device. –  Paul Nikonowicz Aug 15 '13 at 15:29
    
Even if it is 8 bytes, it should be 6.25mb. And I don't want to avoid caching, this is not a solution. There has to be a way to do it right. –  Ori Wasserman Aug 15 '13 at 15:32

3 Answers 3

up vote 6 down vote accepted

this is the reason for your problem:

images are also scaled according to the density, so they can use a lot of memory.

for example, if the image file is in the "drawable" folder (which is mdpi density), and you run it on an xhdpi device, both the width and the height would take 2 times . maybe this link could help you , or this one.

so, in your example, the bytes the image file would take are : (1024*2)*(800*2)*4 =13,107,200 bytes.

it would be even worse if you ran it on an xxhdpi device (like the HTC one and Galaxy S4) .

what can you do? either put the image file in the correct density folder ("drawable-xhdpi" or "drawable-xxhdpi"), or put it in "drawable-nodpi" (or in the assets folder) and downscale the image according to your needs.

btw, you don't have to set "options.inJustDecodeBounds = false" , since it's the default behavior. in fact , you can set null for the bitmap options.

about downscaling, this is another subject. you can use either google's way or my way , each has its own advantages and disadvantages.

about caching, there are many ways to do it. the most common one is LRU cache. there is also an alternative i've created recently (link here or here) that allows to cache a lot more images and avoid having OOM but it gives you a lot of responsibility .

share|improve this answer
    
Wow. this is so stupid, but it's also very reasonable so I hate it even more... Thank you so much! –  Ori Wasserman Aug 17 '13 at 0:49
    
what is stupid? i think i've pretty much covered the whole issue, and gave you some solutions. why do you hate my answer? if you have any other questions regarding it you can ask and i will try to answer... –  android developer Aug 17 '13 at 9:21
    
sorry, the answer is perfect, I meant that being stuck on this for days is stupid. –  Ori Wasserman Aug 17 '13 at 9:52
1  
ok. i forgot another tip regarding bitmaps: you can set their format, so if you don't need transparency and the quality doesn't matter much, you could use RGB_565 (uses 2 bytes per pixel) instead of the default ARGB_8888 (which uses 4 bytes per pixel) . link here: developer.android.com/reference/android/graphics/… . there are also some videos regarding memory and bitmaps, even on google IO websites. i recommend to watch them, even if they don't talk about your problem. –  android developer Aug 17 '13 at 9:56

You can use this method to pass the image and get a bitmap out of it :

public Bitmap decodeFile(File f) {
    Bitmap b = null;
    try {
        // Decode image size
        BitmapFactory.Options o = new BitmapFactory.Options();
        o.inJustDecodeBounds = true;

        FileInputStream fis = new FileInputStream(f);
        BitmapFactory.decodeStream(fis, null, o);
        fis.close();
        int IMAGE_MAX_SIZE = 1000;
        int scale = 1;
        if (o.outHeight > IMAGE_MAX_SIZE || o.outWidth > IMAGE_MAX_SIZE) {
            scale = (int) Math.pow(
                    2,
                    (int) Math.round(Math.log(IMAGE_MAX_SIZE
                            / (double) Math.max(o.outHeight, o.outWidth))
                            / Math.log(0.5)));
        }

        // Decode with inSampleSize
        BitmapFactory.Options o2 = new BitmapFactory.Options();
        o2.inSampleSize = scale;
        fis = new FileInputStream(f);
        b = BitmapFactory.decodeStream(fis, null, o2);
        fis.close();
    } catch (IOException e) {
        e.printStackTrace();
    }
    return b;
}
share|improve this answer
    
I too was getting a lot of crashes like OutOfMemoryError while working with Images. So then I made this method using some mathematics and after that I could use even a 5mb size of image without any crash. –  Arshu Aug 15 '13 at 15:24
    
Before I try this, I want to understand the reason - are you saying that BitmapFactory.decodeStream decodes better than BitmapFactory.decodeResource? –  Ori Wasserman Aug 15 '13 at 15:31
    
It's not that, I have used decodeStream because I have taken an image file as input and its using a FileInputStream and if it had been a resource file then I would have used decodeResource –  Arshu Aug 15 '13 at 15:36
    
so how is this better than decodeSampledBitmapFromResource as shown at developer.android.com/training/displaying-bitmaps/… ? –  Ori Wasserman Aug 15 '13 at 15:39
    
The method in that link and which I using is different as I'm fixing the maximum size of the image to be 1000 pixels and moreover if you use my code you would not see the output image having much degradation, whereas the code at that link reduces the output image quality a lot. –  Arshu Aug 15 '13 at 15:57

@Ori Wasserman: As per your request I used a method to get images from the resource folder and that too I used a 7 MB image. I put the 7 MB image in the "res->drawable" folder and with the following code it didn't crash and the image was shown in the imageview:

 Bitmap image = BitmapFactory.decodeResource(getResources(), R.drawable.image_7mb);
 loBitmap = Bitmap.createScaledBitmap(image, width_of_screen , height_of_screen, true);
 imageview.setImageBitmap(loBitmap);
share|improve this answer
    
actually it will use more RAM than what you said, only for a short time. the reason is that you create both the original bitmap and a small one. you won't notice it since the large image will be disposed of on the next GC. the point where you have both is the most critical one. –  android developer Aug 16 '13 at 19:51

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