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1) if in PHP i've got this code:

$var = "\x00\x23\x21\x11";

How i should write this statement in Java?

2) when I need to concatenate 3 types of variables, two of this bytes and a string, and than get the SHA-256 digest.

I do

String all = varbyte1+varstr1+varbyte2;
MessageDigest md = MessageDigest.getInstance("SHA-256");
byte[] digest = md.digest(all.getBytes("UTF-8"));
String hash = String.format("%0" + (digest.length*2) + "X", new BigInteger(1, digest));

Is this correct?

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2 Answers 2

You're doing it wrong, as you would probably notice if you looked at your all:

    String x = "meh";
    byte b = 39;
    byte c = 99;
    String y = b + x + c ;
    System.out.print(y);

prints 39meh99. I'd suggest using a ByteArrayOutputStream and writing the three parts in three calls to stream.write.

In general, you should get used to the fact that Strings in Java are not byte arrays since the distinction between char and byte is pretty solidly enforced, so you always should think about which encoding you use to convert between the two.

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ok. but if I wanted to put a mac address into a variable in php I do $var = "\x00\x01\x02\x03\x04\x05"; what type of variable should be instantiated IN JAVA and how I can initialize it? –  antonioz Nov 4 '11 at 20:33
    
Byte array! byte[] mac = new Byte[0x00,0x01,0x02,0x03,0x04,0x05]. –  themel Nov 4 '11 at 23:40
    
this statement generates errors ^_^ –  antonioz Nov 5 '11 at 10:43
    
Eh, yes, very sorry, it shows that I do Scala at work :) byte[] mac = {0x01,0x02,0x03,0x04,0x05}; –  themel Nov 5 '11 at 10:47
    
yes :) i should write for values as 0xc1 this right? byte[] mac = {(byte)0xC1,(byte)0x8E,(byte)0x03,(byte)0x04,(byte)0x05}; –  antonioz Nov 5 '11 at 10:51

Part 1 I can answer.

$var = "\\x00\\x23\\x21\\x11";

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this is for php but in java if i have String var = "\\x00\\x23\\x21\\x11"; and print it i don't get the same output of php code! :D this for one reason, in php the variabiles don't require the type! :| –  antonioz Nov 4 '11 at 20:36

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