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I`m trying to read an image from an URL (with the java package java.net.URL) to a byte[]. "Everything" works fine, except that the content isnt being enterely read from the stream (the image is corrupt, it doesnt contain all the image data)... The byte array is being persisted in a database (BLOB). I really dont know what the correct approach is, maybe you can give me a tip :)

This is my first approach (code formatted, removed unnecessary informations...):

URL u = new URL("http://localhost:8080/images/anImage.jpg");
int contentLength = u.openConnection().getContentLength();
Inputstream openStream = u.openStream();
byte[] binaryData = new byte[contentLength];
openStream.read(binaryData);
openStream.close();

My second approach was this one (as you'll see the contentlength is being fetched another way):

URL u = new URL(content);
openStream = u.openStream();
int contentLength = openStream.available();
byte[] binaryData = new byte[contentLength];
openStream.read(binaryData);
openStream.close();

Both of the code result in a corrupted image... I already read this post from stackoverflow

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6 Answers 6

up vote 23 down vote accepted

There's no guarantee that the content length you're provided is actually correct. Try something akin to the following:

ByteArrayOutputStream baos = new ByteArrayOutputStream();
InputStream is = null;
try {
  is = url.openStream ();
  byte[] byteChunk = new byte[4096]; // Or whatever size you want to read in at a time.
  int n;

  while ( (n = is.read(byteChunk)) > 0 ) {
    baos.write(byteChunk, 0, n);
  }
}
catch (IOException e) {
  System.err.printf ("Failed while reading bytes from %s: %s", url.toExternalForm(), e.getMessage());
  e.printStackTrace ();
  // Perform any other exception handling that's appropriate.
}
finally {
  if (is != null) { is.close(); }
}

You'll then have the image data in baos, from which you can get a byte array by calling baos.toByteArray().

This code is untested (I just wrote it in the answer box), but it's a reasonably close approximation to what I think you're after.

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17  
Please never write an empty catch-block, not even in an example! Put at least e.printStackTrace() there! Examples have a tendency to become production code and we all have to work with that later on. –  Joachim Sauer Feb 19 '10 at 9:56
2  
You're absolutely right; thanks for pointing that out. I've added more meaningful exception handling to the example. –  RTBarnard Feb 19 '10 at 10:02
    
Use commons.apache.org/io/api-1.4/org/apache/commons/io/… . This will make code look much cleaner. –  Adi Feb 19 '10 at 10:12
    
Thx for your answer, your approach did work :) I have to write the data bit by bit (or a defined chunk value) to a ByteArrayOutputStream (which will on end be outputted with .toByteArray(), that was my fault... –  tim.kaufner Feb 19 '10 at 10:14

Just extending Barnards's answer with commons-io. Separate answer because I can not format code in comments.

InputStream is = null;
try {
  is = url.openStream ();
  byte[] imageBytes = IOUtils.toByteArray(is);
}
catch (IOException e) {
  System.err.printf ("Failed while reading bytes from %s: %s", url.toExternalForm(), e.getMessage());
  e.printStackTrace ();
  // Perform any other exception handling that's appropriate.
}
finally {
  if (is != null) { is.close(); }
}

http://commons.apache.org/io/api-1.4/org/apache/commons/io/IOUtils.html#toByteArray(java.io.InputStream)

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Thats another nice solution, but I will use the first one (because we wont include too much external libs). –  tim.kaufner Feb 19 '10 at 10:36

Here's a clean solution:

private byte[] downloadUrl(URL toDownload) {
    ByteArrayOutputStream outputStream = new ByteArrayOutputStream();

    try {
        byte[] chunk = new byte[4096];
        int bytesRead;
        InputStream stream = toDownload.openStream();

        while ((bytesRead = stream.read(chunk)) > 0) {
            outputStream.write(chunk, 0, bytesRead);
        }

    } catch (IOException e) {
        e.printStackTrace();
        return null;
    }

    return outputStream.toByteArray();
}
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Don't forget to call the close method on 'stream' to release the used resources. –  Vini.g.fer Jun 23 at 19:01
byte[] b = IOUtils.toByteArray((new URL( )).openStream()); //idiom

will suffice in a sandbox...closing an inputstream is for pussies anyway.

if you want a (76-character) chunk (using commons codec)...

byte[] b = Base64.encodeBase64(IOUtils.toByteArray((new URL( )).openStream()), true);
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3  
-1 for improper formatting and a bit of a profanity. –  asgs Apr 3 '11 at 13:03
2  
+1 for use of profanity –  Michael J. Lee Jun 18 '14 at 18:49

The content length is just a HTTP header. You cannot trust it. Just read everything you can from the stream.

Available is definitely wrong. It's just the number of bytes that can be read without blocking.

Another issue is your resource handling. Closing the stream has to happen in any case. try/catch/finally will do that.

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Thx for your answer. I omit the try/catch in my code posting. But how can I know the exact length of the stream? I have to allocate the byte[], so I do have to provide a length. Allocate a fixed length (say 1024) and reading from an position to an offset, check if stream contains data, copying to a new array, merging all byte[] couldnt be the best solution... –  tim.kaufner Feb 19 '10 at 9:56

I am very surprised that nobody here has mentioned the problem of connection and read timeout. It could happen (especially on Android and/or with some crappy network connectivity) that the request will hang and wait forever.

The following code (which also uses Apache IO Commons) takes this into account, and waits max. 5 seconds until it fails:

public static byte[] downloadFile(URL url)
{
    try {
        URLConnection conn = url.openConnection();
        conn.setConnectTimeout(5000);
        conn.setReadTimeout(5000);
        conn.connect(); 

        ByteArrayOutputStream baos = new ByteArrayOutputStream();
        IOUtils.copy(conn.getInputStream(), baos);

        return baos.toByteArray();
    }
    catch (IOException e)
    {
        // Log error and return null or some default
    }
}
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