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I am designing an archive format(Just for fun) in Java using this template-

First 4 bytes: Number of files in the archive
Next 4 bytes: Number of bytes in the filename
Next N bytes: Filename
Next 10 bytes: Number of bytes in the file
Next N bytes: File contents

from PHP Safe way to download mutliple files and save them.

I am having on trouble with finding the values of the number of files etc. but I don't know how to expand an integer into 4 bytes.

Is it similar to this- How do I truncate a java string to fit in a given number of bytes, once UTF-8 encoded?

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2 Answers

up vote 3 down vote accepted

You can convert an int into 4 bytes like this:

public byte[] getBytesForInt(int value) {
    byte[] bytes = new byte[4];
    bytes[0] = (byte) ((value >> 24) & 0xFF);
    bytes[1] = (byte) ((value >> 16) & 0xFF);
    bytes[2] = (byte) ((value >> 8) & 0xFF);
    bytes[3] = (byte) (value & 0xFF);
    return bytes;
}

This would put them in big-endian order as often used for transport (see Endianness). Alternatively if you're already dealing with an OutputStream you could wrap it with a DataOutputStream and just use writeInt(). For example as per your template:

FileOutputStream fileOut = new FileOutputStream("foo.dat");
DataOutputStream dataOut = new DataOutputStream(fileOut);
dataOut.writeInt(numFiles);
dataOut.writeInt(numBytesInName);
dataOut.writeUTF(filename);
dataOut.writeLong(numBytesInFile);
dataOut.write(fileBytes);

Note that the writeLong() is actually 8 bytes. I'm not sure why you'd want to use 10 and I imagine 8 from a long is plenty.

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In your code I think there is an error on line 2. Unexpected int keyword? –  liamzebedee May 4 '11 at 9:36
    
Oops, mistake, fixed. –  WhiteFang34 May 4 '11 at 9:37
    
I understand that a byte is 8 bits and an integer in java is 32 bits. So does that mean I don't even need to go through all of this and just write the integer since an integer is 4 bytes(32 bits) –  liamzebedee May 4 '11 at 9:40
1  
@Liam: yes, a Java int holds 4 bytes worth of data, so writing it directly will have the same effect. However a normal OutputStream has no method to directly write an int (don't be fooled with this method, read its documentation to see why). Therefore you need some other way to write it: Either convert it to byte[] and write that or get a class that can write int values). –  Joachim Sauer May 4 '11 at 9:44
1  
Yeah, writeInt() should do what you need. No need to convert to bytes manually. I provided the byte example since your question asked for it :) –  WhiteFang34 May 4 '11 at 9:45
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Use a DataOutput/DataInput implementation to write/read that format, it does most of the work for you. The classical implementations are DataOutputStream and DataInputStream:

DataOutputStream dos = new DataOutputStream(outputStream);
dos.writeInt(numFiles);
// for each file name
byte[] fn = fileName.getBytes("UTF-8"); // or whichever encoding you chose
dos.writeInt(fn.length);
dos.write(fn);
// ...

Reading works pretty much the same.

Note that these use big endian. You'll have to check (or specify) if your format uses big- or little-endian.

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Another option would be to use ByteBuffer. It's not as easy to use, but it's good if you want to do multiple passes over some sections of data without copying. –  Daniel May 4 '11 at 9:45
    
@Daniel: that's true. ByteBuffer also has the advantage of having configurable byte order/endianness. –  Joachim Sauer May 4 '11 at 9:55
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