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I have 2 bytes:

byte b1 = 0x5a;  
byte b2 = 0x25;

How do I get 0x5a25 ?

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2  
"add" is not a good description of this operation. Concatenate? –  Andrew Jaffe Dec 20 '09 at 10:36

6 Answers 6

It can be done using bitwise operators '<<' and '|'

public int Combine(byte b1, byte b2)
{
    int combined = b1 << 8 | b2;
    return combined;
}

Usage example:

[Test]
public void Test()
{
    byte b1 = 0x5a;
    byte b2 = 0x25;
    var combine = Combine(b1, b2);
    Assert.That(combine, Is.EqualTo(0x5a25));
}
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1  
I'm pretty certain you didn't need to wrap that in a function :-) But you're right, so +1. –  paxdiablo Dec 20 '09 at 10:42
5  
Beware of en.wikipedia.org/wiki/Endianness. It really matters what the bytes will be used for. Alhough most c# work is done on the Intel platform, the bytes may be send out as a part of network protocol where endiannes matters. –  danatel Dec 20 '09 at 10:53
    
oh the OR is nice :-) but it is still short... +1 for the OR :) –  AK_ Dec 20 '09 at 11:31

Using bit operators: (b1 << 8) | b2 or just as effective (b1 << 8) + b2

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A more explicit solution (also one that might be easier to understand and extend to byte to int i.e.):

using System.Runtime.InteropServices;
[StructLayout(LayoutKind.Explicit)]
struct Byte2Short {
  [FieldOffset(0)]
  public byte lowerByte;
  [FieldOffset(1)]
  public byte higherByte;
  [FieldOffset(0)]
  public short Short;
}

Usage:

var result = (new Byte2Short(){lowerByte = b1, higherByte = b2}).Short;

This lets the compiler do all the bit-fiddling and since Byte2Short is a struct, not a class, the new does not even allocate a new heap object ;)

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union is evil... –  AK_ Dec 20 '09 at 11:45
    
maybe - but if you want to express that something can be understood more than one way on a bit-wise level it is the tool of choice. Personally I prefer the shift+or method, but it becomes quite cumbersome when your target is i.e. a uint64, while the union still remains very readable in that case. –  gha.st Dec 20 '09 at 12:08
    
There's also BitConverter.ToUInt16(new[] { b2, b1, }, 0). –  Jeppe Stig Nielsen Mar 17 '13 at 22:53
byte b1 = 0x5a;
byte b2 = 0x25;

Int16 x=0;

x= b1;
x= x << 8;
x +=b2;
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The simplest would be

b1*256 + b2
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(b1 << 8) + b2 will do the job faster. –  futureelite7 Dec 20 '09 at 10:38
3  
@futureelite7, that's unlikely to be the case with modern compilers - in any case, you should have used (b1<<8)|b2 :-) –  paxdiablo Dec 20 '09 at 10:41
    
@futureelite7: I note that b1*256+b2 has one fewer character than (b1<<8)+b2 so actually b1*256+b2 is faster. :-) –  Jason Dec 20 '09 at 18:03

The question is a little ambiguous.

If a byte array you could simply: byte[] myarray = new byte[2]; myarray[0] = b1; myarray[1] = b2; and you could serialize the byearray...

or if you're attempting to do something like stuffing these 16 bits into a int or similar you could learn your bitwise operators in c#... http://en.wikipedia.org/wiki/Bitwise%5Foperation#Bit%5Fshifts

do something similar to:

byte b1 = 0x5a; byte b2 = 0x25; int foo = ((int) b1 << 8) + (int) b2;

now your int foo = 0x00005a25.

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