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.

My app has ListView with images. It loads images from internet using Universal Image Loader (1.7.0).

Configuration and Display Options:

DisplayImageOptions defaultOptions = new DisplayImageOptions.Builder()
                .cacheInMemory()
                .cacheOnDisc()
                .build();
ImageLoaderConfiguration config = new ImageLoaderConfiguration.Builder(this)
                .defaultDisplayImageOptions(defaultOptions)
                .threadPoolSize(2)
                .enableLogging()
                .build();

Part of getView() (My app reuses ConvertView and uses ViewHolder pattern):

View rowView = convertView;

ViewHolder holder;

if (rowView == null) {
    LayoutInflater inflater = activity.getLayoutInflater();
    rowView = inflater.inflate(R.layout.list_row, null, true);
    holder = new ViewHolder();
    holder.photoView = (ImageView) rowView.findViewById(R.id.list_photo_view);

    rowView.setTag(holder);
} else {
    holder = (ViewHolder) rowView.getTag();
}
String photoUrl = "http://someserver.com/some_image.jpg";
mImageLoader.displayImage(photoUrl, holder.photoView);

list_row.xml:

<?xml version="1.0" encoding="utf-8"?>
<LinearLayout xmlns:android="http://schemas.android.com/apk/res/android"
    android:layout_width="fill_parent"
    android:layout_height="fill_parent"
    android:orientation="vertical"
    android:clickable="true" >

    <ImageView
        android:id="@+id/list_photo_view"
        android:layout_width="match_parent"
        android:layout_height="wrap_content"
        android:adjustViewBounds="false"
        android:contentDescription="@string/photo"
        android:scaleType="centerInside"
        android:src="@drawable/template_image_list" />

</LinearLayout>

Of course ImageView isn't single view in each row. It's short version :). So images sizes, that I download from internet is 450x337. I'm testing my app on Tablet with screen size of 1280x760.

As I enabled logging - I see such messages:

Load image from memory cache [http://someserver.com/some_image.jpg_1280x736]

And so on... I'm a little confused with url ending - "_1280x736". As second part of manual says:

• maxImageWidthForMemoryCache() and maxImageHeightForMemoryCache() is used for decoding images into Bitmap objects. In order not to store a full-sized image in the memory, it is reduced to a size determined from the values of ImageView parameters, where the image is loaded: maxWidth and maxHeight (first stage), layout_width and layout_height (second stage). If these parameters are not defined (values fill_parent and wrap_content are considered as uncertain), then dimensions specified by settings maxImageWidthForMemoryCache() and maxImageHeightForMemoryCache() are taken. The size of the original image is reduced by 2 times (recommended for fast decoding), till the width or height becomes less than the specified values; o Default values - size of the device’s screen.

So, as I understand this ending is the size of image in memory cache after "reduce" :) and image loader had used default value (size of screen). I'm not suprised that image loader couldn't get ImageView's size (maybe too early), but why original image was enlarged? Is it hard to verify original image's sizes and leave them without modifications? Of course, I can add image sizes to displayImage method, but I need explaination...

share|improve this question

1 Answer 1

up vote 2 down vote accepted

Nice detailed question.

URL ending , like "_1280x736", doesn't mean the size of result Bitmap. It's the target size for original image to scale down to. In your case it's equal to device screen size and original image (which is smaller this target size) won't be scaled (until you set ImageScaleType.EXACTLY_STRETCHED in display options).

So don't worry. If you see real Bitmap size in Runtime then you'll see original image size (not 1280x736).

share|improve this answer
    
Thanx. Now I'm calm. –  SteelRat Dec 18 '12 at 8:14

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.