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I am trying to scale a bitmap from an SD card and write it to phone memory. Then decode it at a later point to add it to HashMap.

The problem is that I am getting file not found exception although the path is right and the scaled image exists (I checked that)

Here is the saving part

        Bitmap yourSelectedImage = BitmapFactory.decodeStream(imageStream, null, options );         
        File imageRootPath = getFilesDir();
        File imageRoot = new File(imageRootPath, imagUri.getLastPathSegment()+".png");
        FileOutputStream out = new FileOutputStream(imageRoot);
        yourSelectedImage.compress(Bitmap.CompressFormat.PNG, 90, out);

And here is the part when I read the file

try {
Uri mainImgeUri = Uri.parse(imageRoot.toString());
File imageFile = new File(mainImgeUri.toString());
if(imageFile.exists()){
   System.out.println("it does");
}
InputStream imageStream = ListPropertiesBaseActivity.this.getContentResolver().openInputStream(mainImgeUri); // I am getting file not found error

Bitmap yourSelectedImage =BitmapFactory.decodeStream(imageStream);
hmBitmap.put(ID, yourSelectedImage);
imageStream.close();
} catch (Exception e) {

e.printStackTrace();
}

Could it be that OpenInputStream can not read from internal phone memory? Or may be the image that resulted from saving is not good?

Although I was able to view it by manually browsing to the file and opening it

Please note that the System.out.Println is executed so it means the file exists

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3 Answers 3

up vote 2 down vote accepted

Have you tried Logging imageStream to see what the uri actually is?

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Well since I am getting an exception at the line that is populating imageStream then it is not even populated –  Snake Feb 27 '13 at 17:32
    
I am concerned that parsing a URI from imageRoot.toString() won't give you a actual uri to the location of the File. You could try Uri mainImgeUri = Uri.fromFile(imageRoot) to get an actual file:// uri to use with openInputStream. –  domji84 Feb 27 '13 at 17:41
    
I logged the URI and it is has the correct path. I will update my code with something else –  Snake Feb 27 '13 at 17:47
    
Could you paste the Uri Log here? It has to comply with either the content, android.resource or file Uri schemes to work with openInputStream. Uri.fromFile(imageRoot) with give you a valid file uri. –  domji84 Feb 27 '13 at 17:51
3  
The Uri should look like file:///data/data/com.myproj.testapp/files/3555.png otherwise it will not be recognised as a file location. If you use Uri.fromFile(imageRoot) it should give you a valid file Uri. –  domji84 Feb 27 '13 at 17:58

create a File object using you mainImgeUri uri and check file exists or not, the pass this file to openInputStream() method

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I put the code to check if the file exists or not. And it does. OpenInputStream accepts URI only so Ican't pass the file but the file exists –  Snake Feb 27 '13 at 17:04

I FOUND IT. Well I found a way around it but I was never able to explain the previous behviour and why it won't work. I replaced this getContentResolver with

FileInputStream fis = new FileInputStream(imageFile);
Bitmap yourSelectedImage =BitmapFactory.decodeStream(fis);

This worked. Any idea why! though

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