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How to set, clear and toggle a bit in C/C++?

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5  
read this: graphics.stanford.edu/~seander/bithacks.html and, when you'll master this, read this one: realtimecollisiondetection.net/blog/?p=78 –  ugasoft Sep 18 '08 at 16:01
3  
This link helped me to understand that how these operations actually work - cs.umd.edu/class/sum2003/cmsc311/Notes/BitOp/setBitI.html Here you can find more interesting operations - cs.umd.edu/class/sum2003/cmsc311/Notes –  rajya vardhan Feb 2 '13 at 21:17
7  
I can easily imagine this wasn't for the question itself but for spawning a very useful reference guide. Considering I got here when I needed a bit of information, anyway. –  Joey van Hummel Aug 11 '13 at 21:21
    
@glglgl /Jonathon it has enough significance for C++ to be tagged as such. It's a historic question with lots of traffic and the C++ tag will help fellow interested programmers find it through a google search. –  Luchian Grigore Nov 4 '13 at 18:57

21 Answers 21

up vote 1274 down vote accepted

Setting a bit

Use the bitwise OR operator (|) to set a bit.

number |= 1 << x;

That will set bit x.

Clearing a bit

Use the bitwise AND operator (&) to clear a bit.

number &= ~(1 << x);

That will clear bit x. You must invert the bit string with the bitwise NOT operator (~), then AND it.

Toggling a bit

The XOR operator (^) can be used to toggle a bit.

number ^= 1 << x;

That will toggle bit x.

Checking a bit

You didn't ask for this but I might as well add it.

To check a bit, AND it with the bit you want to check:

bit = number & (1 << x);

That will put the value of bit x into the variable bit.

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30  
I would like to note that on platforms that have native support for bit set/clear (ex, AVR microcontrollers), compilers will often translate 'myByte |= (1 << x)' into the native bit set/clear instructions whenever x is a constant, ex: (1 << 5), or const unsigned x = 5. –  Aaron Sep 17 '08 at 17:13
24  
bit = number & (1 << x); will not put the value of bit x into bit unless bit has type _Bool (<stdbool.h>). Otherwise, bit = !!(number & (1 << x)); will.. –  Chris Young Nov 16 '08 at 7:49
5  
BTW the bit-fiddling here will silently fail if number is wider than int –  anatolyg May 9 '13 at 15:58
5  
why don't you change the last one to bit = (number >> x) & 1 –  aaronman Jun 26 '13 at 18:47
4  
1 is an int literal, which is signed. So all the operations here operate on signed numbers, which is not well defined by the standards. The standards does not guarantee two's complement or arithmetic shift so it is better to use 1U. –  Siyuan Ren Dec 10 '13 at 8:53

Nobody mentioned the Standard C++ Library: std::bitset<N>.
Or the boost version: boost::dynamic_bitset.

No need to roll your own:

#include <bitset>
#include <iostream>

int main()
{
    std::bitset<5> x;

    x[1] = 1;
    x[2] = 0;
    // Note x[0-4]  valid

    std::cout << x << std::endl;
}

[Alpha:] > ./a.out
00010

Boost version allows a runtime sized bitset compared with STL compile time sized bitset.

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9  
+1. Not that std::bitset is usable from "C", but as the author tagged his/her question with "C++", AFAIK, your answer is the best around here... std::vector<bool> is another way, if one knows its pros and its cons –  paercebal Sep 19 '08 at 18:16
9  
@andrewdotnich: vector<bool> is (unfortunately) a specialization that stores the values as bits. See gotw.ca/publications/mill09.htm for more info... –  Niklas Dec 12 '08 at 20:40
20  
Maybe nobody mentioned it because this was tagged embedded. In most embedded systems you avoid STL like the plague. And boost support is likely a very rare bird to spot among most embedded compilers. –  Lundin Aug 18 '11 at 19:47
4  
@Martin It is very true. Besides specific performance killers like STL and templates, many embedded systems even avoid the whole standard libraries entirely, because they are such a pain to verify. Most of the embedded branch is embracing standards like MISRA, that requires static code analysis tools (any software professionals should be using such tools btw, not just embedded folks). Generally people have better things to do than run static analysis through the whole standard library - if its source code is even available to them on the specific compiler. –  Lundin Aug 19 '11 at 6:26
5  
@Lundin: Your statements are excessively broad (thus useless to argue about). I am sure that I can find situations were they are true. This does not change my initial point. Both of these classes are perfectly fine for use in embedded systems (and I know for a fact that they are used). Your initial point about STL/Boost not being used on embedded systems is also wrong. I am sure there are systems that don't use them and even the systems that do use them they are used judiciously but saying they are not used is just not correct (because there are systems were they are used). –  Loki Astari Aug 19 '11 at 6:41

The other option is to use bit fields:

struct bits {
    unsigned int a:1;
    unsigned int b:1;
    unsigned int c:1;
};

struct bits mybits;

defines a 3-bit field (actually, it's three 1-bit felds). Bit operations now become a bit (haha) simpler:

To set or clear a bit:

mybits.b = 1;
mybits.c = 0;

To toggle a bit:

mybits.a = !mybits.a;
mybits.b = ~mybits.b;
mybits.c ^= 1;  /* all work */

Checking a bit:

if (mybits.c)  //if mybits.c is non zero the next line below will execute

This only works with fixed-size bit fields. Otherwise you have to resort to the bit-twiddling techniques described in previous posts.

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2  
ah, what's that :1 initialization called.. –  bobobobo Aug 8 '09 at 3:10
26  
I've always found using bitfields is a bad idea. You have no control over the order in which bits are allocated (from the top or the bottom), which makes it impossible to serialize the value in a stable/portable way except bit-at-a-time. It's also impossible to mix DIY bit arithmetic with bitfields, for example making a mask that tests for several bits at once. You can of course use && and hope the compiler will optimize it correctly... –  R.. Jun 28 '10 at 6:17
9  
Bit fields are bad in so many ways, I could almost write a book about it. In fact I almost had to do that for a bit field program that needed MISRA-C compliance. MISRA-C enforces all implementation-defined behavior to be documented, so I ended up writing quite an essay about everything that can go wrong in bit fields. Bit order, endianess, padding bits, padding bytes, various other alignment issues, implicit and explicit type conversions to and from a bit field, UB if int isn't used and so on. Instead, use bitwise-operators for less bugs and portable code. Bit fields are completely redundant. –  Lundin Aug 18 '11 at 19:19
14  
Like most language features, bit fields can be used correctly or they can be abused. If you need to pack several small values into a single int, bit fields can be very useful. On the other hand, if you start making assumptions about how the bit fields map to the actual containing int, you're just asking for trouble. –  Ferruccio Aug 18 '11 at 19:35
1  
@endolith: That would not be a good idea. You could make it work, but it wouldn't necessarily be portable to a different processor, or to a different compiler or even to the next release of the same compiler. –  Ferruccio Mar 8 '12 at 21:02

It is sometimes worth using an enum to name the bits:

enum ThingFlags = {
  ThingMask  = 0x0000,
  ThingFlag0 = 1 << 0,
  ThingFlag1 = 1 << 1,
  ThingError = 1 << 8,
}

Then use the names later on. I.e. write

thingstate |= ThingFlag1;
thingstate &= ~ThingFlag0;
if (thing & ThingError) {...}

to set, clear and test. This way you hide the magic numbers from the rest of your code.

Other than that I endorse Jeremy's solution.

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1  
Alternately you could make a clearbits() function instead of &= ~. Why are you using an enum for this? I thought those were for creating a bunch of unique variables with hidden arbitrary value, but you're assigning a definite value to each one. So what's the benefit vs just defining them as variables? –  endolith Dec 20 '11 at 15:09
2  
@endolith: The use of enums for sets of related constants goes back a long way in c programing. I suspect that with modern compilers the only advantage over const short or whatever is that they are explicitly grouped together. And when you want them for something other than bitmasks you get the automatic numbering. In c++ of course, they also form distinct types which gives you a little extras static error checking. –  dmckee Dec 22 '11 at 1:15
    
You'll get into undefined enum constants if you don't define a constant for each of the possible values of the bits. What's the enum ThingFlags value for ThingError|ThingFlag1, for example? –  Luis Colorado Sep 30 at 10:55

I use macros defined in a header file to handle bit set and clear:

/* a=target variable, b=bit number to act upon 0-n */
#define BIT_SET(a,b) ((a) |= (1<<(b)))
#define BIT_CLEAR(a,b) ((a) &= ~(1<<(b)))
#define BIT_FLIP(a,b) ((a) ^= (1<<(b)))
#define BIT_CHECK(a,b) ((a) & (1<<(b)))

/* x=target variable, y=mask */
#define BITMASK_SET(x,y) ((x) |= (y))
#define BITMASK_CLEAR(x,y) ((x) &= (~(y)))
#define BITMASK_FLIP(x,y) ((x) ^= (y))
#define BITMASK_CHECK(x,y) ((x) & (y))
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10  
Uh I realize this is a 5 year old post but there is no argument duplication in any of those macros, Dan –  Robert Kelly Oct 2 '13 at 14:53

From snip-c.zip's bitops.how:

/*
**  Bit set, clear, and test operations
**
**  public domain snippet by Bob Stout
*/

typedef enum {ERROR = -1, FALSE, TRUE} LOGICAL;

#define BOOL(x) (!(!(x)))

#define BitSet(arg,posn) ((arg) | (1L << (posn)))
#define BitClr(arg,posn) ((arg) & ~(1L << (posn)))
#define BitTst(arg,posn) BOOL((arg) & (1L << (posn)))
#define BitFlp(arg,posn) ((arg) ^ (1L << (posn)))

OK, let's analyze things...

The common expression in all of these that you seem to be having problems with is "(1L << (posn))". All this does is create a mask with a single bit on and which will work with any integer type. The "posn" argument specifies the position where you want the bit. If posn==0, then this expression will evaluate to:

    0000 0000 0000 0000 0000 0000 0000 0001 binary.

If posn==8, it will evaluate to

    0000 0000 0000 0000 0000 0001 0000 0000 binary.

In other words, it simply creates a field of 0's with a 1 at the specified position. The only tricky part is in the BitClr() macro where we need to set a single 0 bit in a field of 1's. This is accomplished by using the 1's complement of the same expression as denoted by the tilde (~) operator.

Once the mask is created it's applied to the argument just as you suggest, by use of the bitwise and (&), or (|), and xor (^) operators. Since the mask is of type long, the macros will work just as well on char's, short's, int's, or long's.

The bottom line is that this is a general solution to an entire class of problems. It is, of course, possible and even appropriate to rewrite the equivalent of any of these macros with explicit mask values every time you need one, but why do it? Remember, the macro substitution occurs in the preprocessor and so the generated code will reflect the fact that the values are considered constant by the compiler - i.e. it's just as efficient to use the generalized macros as to "reinvent the wheel" every time you need to do bit manipulation.

Unconvinced? Here's some test code - I used Watcom C with full optimization and without using _cdecl so the resulting disassembly would be as clean as possible:

----[ TEST.C ]----------------------------------------------------------------

#define BOOL(x) (!(!(x)))

#define BitSet(arg,posn) ((arg) | (1L << (posn)))
#define BitClr(arg,posn) ((arg) & ~(1L << (posn)))
#define BitTst(arg,posn) BOOL((arg) & (1L << (posn)))
#define BitFlp(arg,posn) ((arg) ^ (1L << (posn)))

int bitmanip(int word)
{
      word = BitSet(word, 2);
      word = BitSet(word, 7);
      word = BitClr(word, 3);
      word = BitFlp(word, 9);
      return word;
}

----[ TEST.OUT (disassembled) ]-----------------------------------------------

Module: C:\BINK\tst.c Group: 'DGROUP' CONST,CONST2,_DATA,_BSS

Segment: TEXT BYTE 00000008 bytes
0000 0c 84 bitmanip
or al,84H 0002 80 f4 02 xor ah,02H 0005 24 f7 and al,0f7H 0007 c3 ret

No disassembly errors

----[ finis ]-----------------------------------------------------------------

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2  
2 things about this: (1) in perusing your macros, some may incorrectly believe that the macros actually set/clear/flip bits in the arg, however there is no assignment; (2) your test.c is not complete; I suspect if you ran more cases you'd find a problem (reader exercise) –  Dan Oct 18 '08 at 1:51
5  
-1 This is just weird obfuscation. Never re-invent the C language by hiding away language syntax behind macros, it is very bad practice. Then some oddities: first, 1L is signed, meaning all bit operations will be performed on a signed type. Everything passed to these macros will return as signed long. Not good. Second, this will work very inefficiently on smaller CPUs as it enforces long when the operations could have been on int level. Third, function-like macros are the root of all evil: you have no type safety whatsoever. Also, the previous comment about no assignment is very valid. –  Lundin Aug 18 '11 at 19:14

Use the bitwise operators: & |

to set last bit in 000b :

foo = foo | 001b

to check last bit in foo:

if ( foo & 001b ) ....

to clear last bit in foo:

foo = foo & 110b

I used XXXb for clarity. You'll probably be working with hex representation, depending on the data structure in which you're packing bits.

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Here's my favorite bit arithmetic macro, which works for any type of unsigned integer array from unsigned char up to size_t (which is the biggest type that should be efficient to work with):

#define BITOP(a,b,op) \
 ((a)[(size_t)(b)/(8*sizeof *(a))] op ((size_t)1<<((size_t)(b)%(8*sizeof *(a)))))

To set a bit:

BITOP(array, bit, |=);

To clear a bit:

BITOP(array, bit, &=~);

To toggle a bit:

BITOP(array, bit, ^=);

To test a bit:

if (BITOP(array, bit, &)) ...

etc.

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2  
It's good to read but one should be aware of possible side effects. Using BITOP(array, bit++, |=); in a loop will most likely not do what the caller wants. –  foraidt Jul 13 '10 at 8:27
    
Indeed. =) One variant you might prefer is to separate it into 2 macros, 1 for addressing the array element and the other for shifting the bit into place, ala BITCELL(a,b) |= BITMASK(a,b); (both take a as an argument to determine the size, but the latter would never evaluate a since it appears only in sizeof). –  R.. Jul 13 '10 at 9:19

As this is tagged "embedded" I'll assume you're using a microcontroller. All of the above suggestions are valid & work (read-modify-write, unions, structs, etc.).

However, during a bout of oscilloscope-based debugging I was amazed to find that these methods have a considerable overhead in CPU cycles compared to writing a value directly to the micro's PORTnSET / PORTnCLEAR registers which makes a real difference where there are tight loops / high-frequency ISR's toggling pins.

For those unfamiliar: In my example, the micro has a general pin-state register PORTn which reflects the output pins, so doing PORTn |= BIT_TO_SET results in a read-modify-write to that register. However, the PORTnSET / PORTnCLEAR registers take a '1' to mean "please make this bit 1" (SET) or "please make this bit zero" (CLEAR) and a '0' to mean "leave the pin alone". so, you end up with two port addresses depending whether you're setting or clearing the bit (not always convenient) but a much faster reaction and smaller assembled code.

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Good to know there may be faster options. What was the micro? –  JeffV Jun 14 '12 at 16:58
    
Micro was Coldfire MCF52259, using C in Codewarrior. Looking at the disassembler / asm is a useful exercise as it shows all the steps the CPU has to go through to do even the most basic operation. <br>We also spotted other CPU-hogging instructions in time-critical loops - constraining a variable by doing var %= max_val costs a pile of CPU cycles every time round, while doing if(var > max_val)var-=max_val uses only a couple of instructions. <br>A good guide to a few more tricks is here: codeproject.com/Articles/6154/… –  John U Jun 19 '12 at 17:33

More general, for arbitrary sized bitmaps:

#define BITS 8
#define BIT_SET(  p, n) (p[(n)/BITS] |=  (0x80>>((n)%BITS)))
#define BIT_CLEAR(p, n) (p[(n)/BITS] &= ~(0x80>>((n)%BITS)))
#define BIT_ISSET(p, n) (p[(n)/BITS] &   (0x80>>((n)%BITS)))
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Check a bit at an arbitrary location in a variable of arbitrary type:

#define bit_test(x, y)  ( ( ((const char*)&(x))[(y)>>3] & 0x80 >> ((y)&0x07)) >> (7-((y)&0x07) ) )

Sample usage:

int main(void)
{
    unsigned char arr[8] = { 0x01, 0x23, 0x45, 0x67, 0x89, 0xAB, 0xCD, 0xEF };

    for (int ix = 0; ix < 64; ++ix)
        printf("bit %d is %d\n", ix, bit_test(arr, ix));

    return 0;
}

Notes: This is designed to be fast (given its flexibility) and non-branchy. It results in efficient SPARC machine code when compiled Sun Studio 8; I've also tested it using MSVC++ 2008 on amd64. It's possible to make similar macros for setting and clearing bits. The key difference of this solution compared with many others here is that it works for any location in pretty much any type of variable.

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For the begginer I would like to explain a bit more with example:

example:

value is 0x55;
bitnum : 3rd.

& operator is used check the bit:

0101 0101
& 
0000 1000
___________
0000 0000 (mean 0 : False) It will work fine if 3rd bit 1(Then answer will be True)

Toggle or Flip:

0101 0101
^ 
0000 1000
___________
0101 1101 (Flip the 3rd bit without affecting other bit)

| operator : set the bit

0101 0101
| 
0000 1000
___________
0101 1101 (set the 3rd bit without affecting other bit)
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If you're doing a lot of bit twiddling you might want to use masks which will make the whole thing quicker. The following functions are very fast and still flexible (they allow bit twiddling in bit maps of any size).

const unsigned char TQuickByteMask[8] = 
{
   0x01, 0x02, 0x04, 0x08,
   0x10, 0x20, 0x40, 0x80,
};




/** Set bit in any sized bit mask.
 *
 * @return    none
 *
 * @param     bit    - Bit number.
 * @param     bitmap - Pointer to bitmap.
 */
void TSetBit( short bit, unsigned char *bitmap)
{
    short n, x;

    x = bit / 8;		// Index to byte.
    n = bit % 8;		// Specific bit in byte.

    bitmap[x] |= TQuickByteMask[n];		// Set bit.
}



/** Reset bit in any sized mask.
 *
 * @return  None
 *
 * @param   bit    - Bit number.
 * @param   bitmap - Pointer to bitmap.
 */
void TResetBit( short bit, unsigned char *bitmap)
{
    short n, x;

    x = bit / 8;		// Index to byte.
    n = bit % 8;		// Specific bit in byte.

    bitmap[x] &= (~TQuickByteMask[n]);	// Reset bit.
}




/** Toggle bit in any sized bit mask.
 *
 * @return   none
 *
 * @param   bit    - Bit number.
 * @param   bitmap - Pointer to bitmap.
 */
void TToggleBit( short bit, unsigned char *bitmap)
{
    short n, x;

    x = bit / 8;		// Index to byte.
    n = bit % 8;		// Specific bit in byte.

    bitmap[x] ^= TQuickByteMask[n];		// Toggle bit.
}




/** Checks specified bit.
 *
 * @return  1 if bit set else 0.
 *
 * @param   bit    - Bit number.
 * @param   bitmap - Pointer to bitmap.
 */
short TIsBitSet( short bit, const unsigned char *bitmap)
{
    short n, x;

    x = bit / 8;	// Index to byte.
    n = bit % 8;	// Specific bit in byte.

    // Test bit (logigal AND).
    if (bitmap[x] & TQuickByteMask[n])
    	return 1;

    return 0;
}





/** Checks specified bit.
 *
 * @return  1 if bit reset else 0.
 *
 * @param   bit    - Bit number.
 * @param   bitmap - Pointer to bitmap.
 */
short TIsBitReset( short bit, const unsigned char *bitmap)
{
    return TIsBitSet( bit, bitmap) ^ 1;
}



/** Count number of bits set in a bitmap.
 *
 * @return   Number of bits set.
 *
 * @param    bitmap - Pointer to bitmap.
 * @param    size   - Bitmap size (in bits).
 *
 * @note    Not very efficient in terms of execution speed. If you are doing
 *  	some computationally intense stuff you may need a more complex
 *  	implementation which would be faster (especially for big bitmaps).
 *  	See (http://graphics.stanford.edu/~seander/bithacks.html).
 */
int TCountBits( const unsigned char *bitmap, int size)
{
    int i, count=0;

    for (i=0; i<size; i++)
    	if (TIsBitSet( i, bitmap)) count++;

    return count;
}

Note, to set bit 'n' in a 16 bit integer you do the following:

TSetBit( n, &my_int);

It's up to you to ensure that the bit number is within the range of the bit map that you pass. Note that for little endian processors that bytes, words, dwords,qwords etc, map correctly to each other in memory (main reason that little endian processors are 'better' than big-endian processors, ah, I feel a flame war coming on...).

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Don't use a table for a function that can be implemented with a single operator. TQuickByteMask[n] is equivalent to (1<<n). Also, making your arguments short is a very bad idea. The / and % will actually be a division, not bitshift/bitwise and, because signed division by a power of 2 cannot be implemented bitwise. You should make the argument type unsigned int! –  R.. Jun 28 '10 at 6:24
    
What's the point with this? It only makes the code slower and harder to read? I can't see a single advantage with it. 1u << n is easier to read for C programmers, and can hopefully be translated into a single clock tick CPU instruction. Your division on the other hand, will be translated to something around 10 ticks, or even as bad as up to 100 ticks, depending on how poorly the specific architecture handles division. As for the bitmap feature, it would make more sense to have a lookup table translating each bit index to a byte index, to optimize for speed. –  Lundin Aug 18 '11 at 19:32
    
As for big/little endian, big endian will map integers and raw data (for example strings) in the same way: left-to-right msb to lsb throughout the whole bitmap. While little endian will map integers left to right as 7-0, 15-8, 23-18, 31-24, but raw data is still left-to-right msb to lsb. So how little endian is better for your particular algorithm is completely beyond me, it seems to be the opposite. –  Lundin Aug 18 '11 at 19:42
    
@R.. A table can be useful if your plattform can't shift efficiently, like old microchip mcu's, but of course then the division in the sample is absolutly inefficient –  jeb Nov 18 '11 at 11:28

The bitfield approach has other advantages in the embedded arena. You can define a struct that maps directly onto the bits in a particular hardware register.

struct HwRegister {
    unsigned int errorFlag:1;  // one-bit flag field
    unsigned int Mode:3;       // three-bit mode field
    unsigned int StatusCode:4;  // four-bit status code
};

struct HwRegister CR3342_AReg;

You need to be aware of the bit packing order - I think it's MSB first, but this may be implementation-dependent. Also, verify how your compiler handlers fields crossing byte boundaries.

You can then read, write, test the individual values as before.

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1  
Pretty much everything about bit-fields is implementation-defined. Even if you manage to find out all details regarding how your particular compiler implements them, using them in your code will most certainly make it non-portable. –  Lundin Aug 18 '11 at 19:50
    
@Lundin - True, but embedded system bit-fiddling (particularly in hardware registers, which is what my answer relates to) is never going to be usefully portable anyway. –  Roddy Aug 19 '11 at 20:13
1  
Not between entirely different CPUs perhaps. But you most likely want it to be portable between compilers and between different projects. And there is a lot of embedded "bit-fiddling" that isn't related to the hardware at all, such as data protocol encoding/decoding. –  Lundin Aug 20 '11 at 9:35
    
...and if you get in the habit of using bit fields doing embedded programming, you'll find your X86 code runs faster, and leaner too. Not in simple benchmarks where you have the whole machine to crush the benchmark, but in real-world multi-tasking environments where programs compete for resources. Advantage CISC - whose original design goal was to make up for CPUs faster than buses and slow memory. –  RocketRoy Feb 15 '13 at 22:26

how about this

int ToggleNthBit ( unsigned char n, int num )
{

if(num & (1 << n))
 num &= ~(1 << n);
else
 num |= (1 << n);

return num;
}
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3  
Well, it uses inefficient branching. –  asdf Jul 2 '11 at 19:33

This Program is to Change any data bit from 0 to 1 or 1 to 0.

{

unsigned int data = 0x000000f0;
int bitpos = 4;
int bitvalue = 1;
unsigned int bit = data;
bit = (bit>>bitpos)&0x00000001;
int invbitvalue = 0x00000001&(~bitvalue);
printf("%x\n",bit);

if(bitvalue ==0)
    {
        if(bit==0)
        printf("%x\n",data);
        else
           {
                data = (data^(invbitvalue<<bitpos));
                printf("%x\n",data);
           }
    }
else
    {
        if(bit==1)
        printf("elseif %x\n",data);
        else
            {
                data = (data|(bitvalue<<bitpos));
                printf("else %x\n",data);
            }
    }

}

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Visual C 2010, and perhaps many other compilers, have direct support for bit operations built in. Surprisingly, this works, even the sizeof() operator works properly.

bool    IsGph[256], IsNotGph[256];

//  Initialize boolean array to detect printable characters
for(i=0; i<sizeof(IsGph); i++)  {
    IsGph[i] = isgraph((unsigned char)i);
}

So, to your question, IsGph[i] =1, or IsGph[i] =0 make setting and clearing bools easy.

To find unprintable characters...

//  Initialize boolean array to detect UN-printable characters, 
//  then call function to toggle required bits true, while initializing a 2nd
//  boolean array as the complement of the 1st.
for(i=0; i<sizeof(IsGph); i++)  {
    if(IsGph[i])    {
         IsNotGph[i] = 0;
    }   else   {
         IsNotGph[i] = 1;
    }
}

Note there is nothing "special" about this code. It treats a bit like an integer - which technically, it is. A 1 bit integer that can hold 2 values, and 2 values only.

I once used this approach to find duplicate loan records, where loan_number was the ISAM key, using the 6-digit loan number as an index into the bit array. Savagely fast, and after 8 months, proved that the mainframe system we were getting the data from was in fact malfunctioning. The simplicity of bit arrays makes confidence in their correctness very high - vs a searching approach for example.

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1  
Sad, but true, booleans are still not implemented as bits, so while very useful, this is not a valid example of how to manipulate bits. I'll leave my answer here as some have found it useful, but even with new Intel processors directly supporting new bit instructions and vectors, booleans are still implemented as 8 bit ints. –  RocketRoy Jul 10 at 6:00

Use one of the operators as defined here.

To set a bit, used int x = x | 0x?; where ? is the bit position in binary form.

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Expanding on the bitset answer:

#include <iostream>
#include <bitset>
#include <string>

using namespace std;
int main() {
  bitset<8> byte(std::string("10010011");

  // Set Bit
  byte.set(3); // 10010111

  // Clear Bit
  byte.reset(2); // 10010101

  // Toggle Bit
  byte.flip(7); // 00010101

  cout << byte << endl;

  return 0;
}
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Try one of these functions in C language to change n bit

char bitfield;

// start at 0th position

void chang_n_bit(int n, int value)
{
    bitfield = (bitfield | (1 << n)) & (~( (1 << n) ^ (value << n) ));
}

// OR

void chang_n_bit(int n, int value)
{
    bitfield = (bitfield | (1 << n)) & ((value << n) | ((~0) ^ (1 << n)));
}

// OR

void chang_n_bit(int n, int value)
{
    if(value)
        bitfield |= 1 << n;
    else
        bitfield &= ~0 ^ (1 << n);
}

char get_n_bit(int n)
{
    return (bitfield & (1 << n)) ? 1 : 0;
}
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protected by Praveen Sep 12 at 11:57

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