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.

Am using Universal Image Loader for downloading images . Here are my Configuration and display Options.

File cacheDir = getApplicationContext().getCacheDir();
ImageLoaderConfiguration config = new ImageLoaderConfiguration.Builder(
    getApplicationContext())
    .discCache(new UnlimitedDiscCache(cacheDir)).threadPoolSize(3)
    .denyCacheImageMultipleSizesInMemory()
    .tasksProcessingOrder(QueueProcessingType.LIFO)
    .discCacheFileNameGenerator(new HashCodeFileNameGenerator())
    .build();

options = new DisplayImageOptions.Builder()
    .cacheOnDisc().bitmapConfig(Bitmap.Config.RGB_565)
    .imageScaleType(ImageScaleType.EXACTLY).resetViewBeforeLoading()
    .showStubImage(R.drawable.bt_fine_dining).build();

Everything is working fine . But i want to check whether image is already exists or not. Using discCacheUtil am able to get file of image. [DiscCacheUtil.findInCache(imageUri, discCache)]. But is there any way to get directly Bitmap instead of file ??

And also if i specify both cacheInMemory() and cacheOnDisc() ,will image be saved twice ?? Is there any extra consumption of memory here as image will be saved both in memory and disc ? please help me.

Thanks in advance

share|improve this question

2 Answers 2

Try using loadImageSync(String uri) . It gives you bitmap.

If you want drawable from bitmap

Drawable d = new BitmapDrawable(getResources(),imageLoader.loadImageSync(url);
share|improve this answer
    
But this will probably repeat the DiscCacheUtil.findInCache which you already did. So it's simpler to just load from the file. Just do BitmapFactory.decodeStream(new FileInputStream(file)); –  grebulon Mar 10 at 11:29
imageLoader.displayImage(imageUri, imageView, displayOptions, new ImageLoadingListener() {
@Override
public void onLoadingComplete(String imageUri, View view, Bitmap loadedImage) {
    // Here loadedImage is you Bitmap object.
}
});
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.