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I'm trying to know the states of different bits over a char

lets say I've:

char a = 11 //00001011 in binary

How can I retrieve bit number 5 which is currently 0 and cast it to a bool variable? And How can I set it?

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In programming I would normally expect you to count bits starting with the rightmost bit being bit zero, so that the nth bit has value 2ⁿ, although you accepted an answer that used 1-based indexing... –  Neil Oct 18 '12 at 14:35
    
@Neil - A good point to be sure. I'm used to talking with individuals who think of bit positions as 1-8 instead of the 0-7 as they're usually noted in reference manuals. I made that assumption here as well, so I did clarify that. –  Mike Oct 18 '12 at 14:51
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6 Answers 6

up vote 2 down vote accepted

As you've noted:

char a = 11 // == 00001011 in binary 

Since you said the bit number 5 is clear right now, let's *define the position of the bits as you're talking about them:

pos       8  7  6  5  4  3  2  1
value    [0][0][0][0][1][0][1][1]

You want to test the 5th bit, that means you need a mask that accesses the fifth bit, here's some masks:

your number: 00001011
0x1  mask:   00000001
0x2  mask:   00000010
0x4  mask:   00000100
0x8  mask:   00001000
0x10 mask:   00010000  <-- So that's the one we want, the 5th bit

To set your bit you need a bit-wise OR (|)

a |= 0x10; //   00001011
           // | 00010000  because 1 | anything = 1
           // ----------
           //   00011011  The value is set! 

To test the bit we can use the bit-wise AND (&)

bool something = a & 0x10; //   00001011
                           // & 00010000  because only 1 & 1 = 1
                           // ----------
                           //   00000000  something will be 0 (false) 

*it was pointed out that this is a 1-based indexing as opposed to the more typical 0-based indexing. Which is true. Based on the description I chose to read the question as "bit number 5" meaning typical (human) based counting of 1, 2, 3, 4, etc out of 8-bits.

If you'd rather use a 0-based indexing, this is no problem, just "shift" the same logic by one, the mask for the "5th" bit in 0-based indexing is 0x20

When talking about bits it's good to note which is the least significant bit, and 0 or 1 based to be totally clear.

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You can use some bitwise operators:

bool fifthBitSet = a & 0x10;

Or, more generally:

bool nThBitSet = a & ( 0x1 << n );

Missed the setting part:

a |= 0x1 << n; // set n'th bit
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He said the fifth bit is zero, so it's definitely not 0x8 however you count it. –  Neil Oct 18 '12 at 14:12
    
@Neil my bad, I thought he meant from the left. –  Luchian Grigore Oct 18 '12 at 14:15
1  
%#$$#%#$^#^%$^%$^$ –  Luchian Grigore Oct 18 '12 at 14:16
    
Learning Perl now? –  Daniel Fischer Oct 18 '12 at 20:53
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you can test the bits with bitmasks

a & 0b00010000
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Counting from 0 being the rightmost bit:

To test it:

int b = 5;

bool n = a & (1 << b);

To set (or clear) bit b:

if (n) {  // set
    a |= (1 << b);     // RHS only has bit 'b' set
} else {  // clear
    a &= ~(1 << b);    // RHS has every bit _except_ bit 'b' set
}
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You mention bit number 5, I believe you're looking at the 5th least-significant bit.

You've also asked about how to set a bit at a specific position. For that, use bitwise OR - |:

a = a | 0x10;

As has already been answered, test the bit using bitwise AND - &:

bool isSet = a & 0x10; 

Often you'll use a positional flag like 0x10, but the generalizations given using bit-shifts are very useful, especially if you wrap these into a function:

int pos = 5;

// set bit 5:
a = a | (0x1 << pos);

// test bit 5:
bool isSet = a & (0x1 << pos);

For more information, the wikipedia article on bitwise operation is pretty good.

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Well, you can use this set of functions to get and set the bit states, I suppose:

bool getBit(int data, int bitNumber) {
  int flag = 1 << bitNumber - 1;
  return (bool)(data & flag);
}

void setBit(int& data, int bitNumber) {
  int flag = 1 << bitNumber - 1;
  data |= flag;  
}

...
int main() {
  int a = 11;
  cout << getBit(a, 5); // false
  setBit(a, 5);
  cout << getBit(a, 5); // true
}

Still I wonder why do you need to use this, and not bitsets. )

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