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I want to read an image and convert it to byte[] for my use. What should I do?

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5  
See the reverse: byte[] to InputStream here: stackoverflow.com/questions/2091454/… –  David d C e Freitas Sep 22 '11 at 10:34

13 Answers 13

up vote 354 down vote accepted

You can use Apache commons-io to handle this and similar tasks.

The IOUtils type has a static method to read an InputStream and return a byte[].

InputStream is;
byte[] bytes = IOUtils.toByteArray(is);

Internally this creates a ByteArrayOutputStream and copies the bytes to the output, then calls to ByteArray(). It handles large files by copying the bytes in blocks of 4MB.

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68  
For the want of writing 4 lines of code, you think that importing a 3rd-party dependency is worthwhile? –  oxbow_lakes Aug 12 '09 at 10:24
62  
If there is a library that handles the requirement, and deals with processing for large files, and is well tested, surely the question is why would I write it myself? The jar is only 107KB and if you have need for one method from it, you are likely to use others too –  Rich Seller Aug 12 '09 at 10:46
88  
@oxbow_lakes: considering the staggering amount of wrong implementations of this feature I've seen in my developer life, I feel that yes it's very much worth the external dependency to get it right. –  Joachim Sauer Jun 8 '10 at 12:45
6  
Why not go and have a look at Apache commons stuff like FastArrayList or their soft & weak reference Maps and come back to tell me how "well-tested" this library is. It's a pile of rubbish –  oxbow_lakes Jun 9 '10 at 7:09
39  
In addition to Apache commons-io, check out the ByteStreams class from Google Guava. InputStream is; byte[] filedata=ByteStreams.toByteArray(is); –  michaelok Dec 29 '11 at 20:35

You need to read each byte from your InputStream and write it to a ByteArrayOutputStream. You can then retrieve the underlying byte array by calling toByteArray(); e.g.

InputStream is = ...
ByteArrayOutputStream buffer = new ByteArrayOutputStream();

int nRead;
byte[] data = new byte[16384];

while ((nRead = is.read(data, 0, data.length)) != -1) {
  buffer.write(data, 0, nRead);
}

buffer.flush();

return buffer.toByteArray();
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4  
What about the size of newly created byte[]. Why it is 16384? How could I determine exact right size? Thank you very much. –  Ondrej Bozek Apr 3 '12 at 9:45
4  
16384 is a fairly arbitrary choice although I tend to favour powers of 2 to increase the chance of the array aligning with word boundaries. pihentagy's answer shows how you can avoid using an intermediate buffer, but rather allocate an array of the correct size. Unless you're dealing with large files I personally prefer the code above, which is more elegant and can be used for InputStreams where the number of bytes to read is not known in advance. –  Adamski Apr 3 '12 at 11:33
    
You are the man! I tried for hours to figure this out...this works great. –  Jesse Jul 19 '12 at 21:00
2  
The call to flush() is unnecessary as this method does nothing. –  Axel Fontaine Feb 20 '13 at 18:19
    
@Adamski Isn't creating array of bytes lot bigger than you expect data would be in the stream, waste the memory ? –  bluesm Jun 29 '13 at 16:38

i don't know why this is found so difficult (some pages to scroll in google). so i write my favorite answer here on page number one if googled for "java inputstream to bytearray":

Use Vanilla Javas "DataInputStream" and its "readFully" Method (exists at least since Java 1.4):

...
byte[] imgDataBa = new byte[(int)imgFile.length()];
DataInputStream dataIs = new DataInputStream(new FileInputStream(imgFile));
dataIs.readFully(imgDataBa);
...

there are some other flavors of this method, but this i used all the time for this use case

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10  
+1 for using the standard libraries instead of a 3rd party dependency. Unfortunately it doesn't work for me because I don't know the length of the stream upfront. –  Andrew Spencer Jun 7 '12 at 9:28
    
what is imgFile? It's can't be an InputStream, which was supposed to be the input of this method –  Janus Troelsen Jul 20 '13 at 9:43
1  
@janus it is a "File". this way only works if u know the length of the file or the count of bytes to read. –  dermoritz Jul 28 '13 at 9:49
    
How did you figure this out? Can you explain how you came up with this code, so I can learn how to do the same (and avoid asking questions each time)? –  Imray May 24 at 23:59
    
As mentioned in my answer, i found this via google, but not on first page. And because i wanted to find this solution faster i added the answer here. –  dermoritz May 26 at 13:06

Do you really need the image as a byte[]? What exactly do you expect in the byte[] - the complete content of an image file, encoded in whatever format the image file is in, or RGB pixel values?

Other answers here show you how to read a file into a byte[]. Your byte[] will contain the exact contents of the file, and you'd need to decode that to do anything with the image data.

Java's standard API for reading (and writing) images is the ImageIO API, which you can find in the package javax.imageio. You can read in an image from a file with just a single line of code:

BufferedImage image = ImageIO.read(new File("image.jpg"));

This will give you a BufferedImage, not a byte[]. To get at the image data, you can call getRaster() on the BufferedImage. This will give you a Raster object, which has methods to access the pixel data (it has several getPixel() / getPixels() methods).

Lookup the API documentation for javax.imageio.ImageIO, java.awt.image.BufferedImage, java.awt.image.Raster etc.

ImageIO supports a number of image formats by default: JPEG, PNG, BMP, WBMP and GIF. It's possible to add support for more formats (you'd need a plug-in that implements the ImageIO service provider interface).

See also the following tutorial: Working with Images

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public static byte[] getBytesFromInputStream(InputStream is)
{
    try (ByteArrayOutputStream os = new ByteArrayOutputStream();)
    {
        byte[] buffer = new byte[0xFFFF];

        for (int len; (len = is.read(buffer)) != -1;)
            os.write(buffer, 0, len);

        os.flush();

        return os.toByteArray();
    }
    catch (IOException e)
    {
        return null;
    }
}
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3  
-1 for return null –  artbristol Nov 14 '13 at 16:49
1  
It is an example and as such, brevity is the order of the day. Also returning null here would be the proper choice in some cases (although in a production environment you would also have proper exception handling and documentation). –  user2403009 Mar 6 at 17:59
2  
I understand brevity in an example, but why not just make the example method throw IOException rather than swallowing it and returning a meaningless value? –  pendor May 18 at 23:22
    
The most useful answer, despite null –  Juozas Kontvainis Jul 22 at 19:13
Input Stream is ...
ByteArrayOutputStream bos = new ByteArrayOutputStream();
int next = in.read();
while (next > -1) {
    bos.write(next);
    next = in.read();
}
bos.flush();
byte[] result = bos.toByteArray();
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8  
One and one byte can be a performance killer. For real. –  stolsvik Apr 19 '13 at 9:26

If you happen to use google guava, it'll be as simple as :

byte[] bytes = ByteStreams.toByteArray(inputStream);
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@Adamski: You can avoid buffer entirely.

Code copied from http://www.exampledepot.com/egs/java.io/File2ByteArray.html (Yes, it is very verbose, but needs half the size of memory as the other solution.)

// Returns the contents of the file in a byte array.
public static byte[] getBytesFromFile(File file) throws IOException {
    InputStream is = new FileInputStream(file);

    // Get the size of the file
    long length = file.length();

    // You cannot create an array using a long type.
    // It needs to be an int type.
    // Before converting to an int type, check
    // to ensure that file is not larger than Integer.MAX_VALUE.
    if (length > Integer.MAX_VALUE) {
        // File is too large
    }

    // Create the byte array to hold the data
    byte[] bytes = new byte[(int)length];

    // Read in the bytes
    int offset = 0;
    int numRead = 0;
    while (offset < bytes.length
           && (numRead=is.read(bytes, offset, bytes.length-offset)) >= 0) {
        offset += numRead;
    }

    // Ensure all the bytes have been read in
    if (offset < bytes.length) {
        throw new IOException("Could not completely read file "+file.getName());
    }

    // Close the input stream and return bytes
    is.close();
    return bytes;
}
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Depends on knowing size upfront. –  stolsvik Apr 19 '13 at 9:27
1  
Of course, but they should know the size: "I want to read an image" –  pihentagy Apr 19 '13 at 15:02
1  
if you know the size, then java provides the code for you. see my answer or google for "DataInputStream" and it's readFully method. –  dermoritz May 28 '13 at 7:33
ByteArrayOutputStream out = new ByteArrayOutputStream();
byte[] buffer = new byte[1024];
while (true) {
    int r = in.read(buffer);
    if (r == -1) break;
    out.write(buffer, 0, r);
}

byte[] ret = out.toByteArray();
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Below Codes

public static byte[] serializeObj(Object obj) throws IOException {
  ByteArrayOutputStream baOStream = new ByteArrayOutputStream();
  ObjectOutputStream objOStream = new ObjectOutputStream(baOStream);

  objOStream.writeObject(obj); 
  objOStream.flush();
  objOStream.close();
  return baOStream.toByteArray(); 
}

OR

BufferedImage img = ...
ByteArrayOutputStream baos = new ByteArrayOutputStream(1000);
ImageIO.write(img, "jpeg", baos);
baos.flush();
byte[] result = baos.toByteArray();
baos.close();
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I tried to edit @numan's answer with a fix for writing garbage data but edit was rejected. While this short piece of code is nothing brilliant I can't see any other better answer. Here's what makes most sense to me:

ByteArrayOutputStream out = new ByteArrayOutputStream();
byte[] buffer = new byte[1024]; // you can configure the buffer size
int length;

while ((length = in.read(buffer)) != -1) out.write(buffer, 0, length); //copy streams
in.close(); // call this in a finally block

byte[] result = out.toByteArray();

btw ByteArrayOutputStream need not be closed. try/finally constructs omitted for readability

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/*InputStream class_InputStream = null;
I am reading class from DB 
class_InputStream = rs.getBinaryStream(1);
Your Input stream could be from any source
*/
int thisLine;
ByteArrayOutputStream bos = new ByteArrayOutputStream();
while ((thisLine = class_InputStream.read()) != -1) {
    bos.write(thisLine);
}
bos.flush();
byte [] yourBytes = bos.toByteArray();

/*Don't forget in the finally block to close ByteArrayOutputStream & InputStream
 In my case the IS is from resultset so just closing the rs will do it*/

if (bos != null){
    bos.close();
}
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Closing and flushing bos is a waste of keyboard clicks. Closing the input stream is more likely to help. Reading one byte at a time is inefficient. See numan's answer. –  akostadinov Mar 19 '13 at 17:14

I know its a bit late but I wanted to share this because I think the simplest solution is do something like this (removing try catch code for brevity+clarity):

ByteArrayOutputStream out = new ByteArrayOutputStream();

byte[] buffer = new byte[1024]; //you can configure the buffer size
while (in.read(buffer) != -1) out.write(buffer); //copy streams

byte[] result = out.toByteArray();
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14  
Code does not work correctly! Do not just copy paste it. out.write(buffer) will write always 1024 bytes even if in.read does not read 1024 bytes! –  Nactive Jul 4 '12 at 15:05
    
-1 numan, could you please revise it to correct problems identified by @Nactive –  inquisitive Nov 14 '13 at 8:26

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