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I'm having a little trouble in understanding how I can read and return the value of a certain offset position in a file.

For example, I know from my hex editor that the offset is D768, and the value is 32bit. So how can read this value and display it in a label.

Any help at all will be greatly appreciated.

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4 Answers

up vote 5 down vote accepted

I think that java.io.RandomAccessFile is your new friend :-)

Beware of the following code, it has not been tested.

RandomAccessFile raf = new RandomAccessFile("foo.bin", "r");
raf.seek(0xd768);
int value = raf.read();
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+1: I would use readInt() (read a 32-bit int) instead of read() (reads an unsigned byte) –  Peter Lawrey Mar 17 '12 at 12:17
    
Cheers, fellas, this is very helpful. I think I can take it from here. Thanks again. –  Bagshot Mar 17 '12 at 12:24
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Use the DataInputStream class. Open the file, and position it using skipBytes(offset), and then call readInt(). This will give you a 32 bit starting at the offset you used.

(Note that this assumes that the integer is represented in the file in with the most significant byte first.)

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This is not always working. Skip does not always skip offset number of bytes. (That is why it returns the actual number of skipped bytes). –  MTilsted Mar 17 '12 at 13:26
    
@MTilsted - then you keep skipping until you've reached the requisite number of bytes. In practice, I think you will find skipBytes will only "not work" on a file if offset is beyond the end of the file. –  Stephen C Mar 18 '12 at 2:35
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Check out RandomAccessFile.skipBytes skipping until offset, that class might help you.

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Use skipBytes to get to given position. To read 32-bit number you can use DataInputStream if the value is big-endian. If it's little endian you need to manually convert four bytes to int:

int value = (int)bytes[0]
        | ((int)bytes[1] << 8)
        | ((int)bytes[2] << 16)
        | ((int)bytes[3] << 24);
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