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My objective is to frame a char variable by assigning values to each bit, i.e. I need to assign 0's and 1's to each bit.

I did the following code:

char packet;
int bit;
packet &= ~(1 << 0);

packet |= (1 << 1);

printf("\n Checking each bit of packet: \n");

for(int x=0;x<2;x++)
{
    bit = packet & (1 << x);
    printf("\nBit [%d] of packet : %d", x, bit);
}

But the output I am getting is:

Bit[0] of packet : 0
Bit[1] of packet : 2

What is the problem here?

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1  
It's not clear what you're actually trying to do. What are you expecting to happen? –  yan Mar 31 '11 at 4:49
    
This is what your code does. Let g = garbage (i.e. uninitialized memory bit). You start with "g g g g g g g g". First bitwise operation creates "g g g g g g g 0" and second one does "g g g g g g 1 0". And your loop simply prints out [0] = 0x00 (first bit is 0). and [1] = 0x02 (second bit is 1). So basically, as so many of us say on regular basis, "works as designed" –  DXM Mar 31 '11 at 4:59

3 Answers 3

up vote 3 down vote accepted

There's no problem here, the output is correct.

Here's the reason:

When you set the value of packet with |=, the value is 10 which, in decimal, is 2. When you assign packet & (1 << x) to bit, you're actually assigning the value 2 (10 in binary).

Wikipedia entry:

To determine whether the second bit is 1, a bitwise AND is applied to it and another bit pattern containing 1 in the second bit:

    0011 (decimal 3) 
AND 0010 (decimal 2)   
  = 0010 (decimal 2)

If your intent is to simply check a boolean value of whether or not the bit has been set, simply cast it to a bool value.

(Hope that all made sense, I'm a little tired atm ;))

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First thing:

char packet;
packet &= ~(1 << 0);

This is not reliable, since packet starts off with whatever was in memory last (i.e. garbage). 1 << 0 is just 1. ~1 is ...111110. Anding that with packet will give a different answer each time, depending on what was in memory last; the only sure thing is that the last bit (i.e. least significant) will be set to 0.

packet |= (1 << 1);

This just sets the second bit to 1. So now packet is xxxxxx10.

Your loop then goes over the first two bits; each bit is masked with packet & (1 << x), but that only masks it, it does not move it around. So during the first iteration, 1 << x is 1, and you get the first bit (0). The second iteration, 1 << x is 10, or 2 in decimal. Anding xxxxxx10 with 10 gives 10, which you promptly print out (it appears formatted as 2).

If you want to move the bit (in order to isolate it as a 0 or 1), you can use:

bit = (packet & (1 << x)) >> x;

Or the equivalent but more readable

bit = (packet >> x) & 1;

This will yield the (I'm assuming desired) output of 0, 1 instead of 0, 2.

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That output appears entirely expected. Bit 0 isn't set, Bit 1 is set. Perhaps you're after

bit = !!(packet & (1 << x));

...if you want to get an 0 or 1 result.

By the way, you should initialise packet - use of an uninitialised variable results in undefined behaviour.

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Or just... you know bit = packet>>x & 1; –  domen Apr 2 '11 at 17:57

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