Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

Lets say i have an array dynamically allocated.

int* array=new int[10]

That is 10*4=40 bytes or 10*32=320 bits. I want to read the 2nd bit of the 30th byte or 242nd bit. What is the easiest way to do so? I know I can access the 30th byte using array[30] but accessing individual bits is more tricky.

share|improve this question
    
Possible std::bitset is suitable for your needs –  Oleg Svechkarenko Mar 21 '11 at 10:27
    
If you wish to have bitwise access always ensure you are using the uint8_t type for the data. Otherwise machine data sizes and endianess may cause you problems. –  edA-qa mort-ora-y Mar 21 '11 at 10:36
    
@edA-qa more-ora-y uint16_t, etc. also work. For most uses, so does unsigned char, unsigned int, etc. Endianess isn't a problem, and carefully written (using sizeof(T)*CHAR_BIT, rather than 8, 16, etc.) isn't either. Supposing the program requires that degree of portability. –  James Kanze Mar 21 '11 at 10:43
    
The concern about endianess is that if you have an int array presumably you might be assigning integers to it and then accessing it by byte. If you only ever use bytes you are correct that it won't matter, but at least use unsigned. –  edA-qa mort-ora-y Mar 21 '11 at 10:58
    
Actually, to access 30th byte you use array[29] not array[30] :) –  Armen Tsirunyan Mar 21 '11 at 11:13

6 Answers 6

bool bitset(void const * data, int bitindex) {
  int byte = bitindex / 8;
  int bit = bitindex % 8;
  unsigned char const * u = (unsigned char const *) data;
  return (u[byte] & (1<<bit)) != 0;
}
share|improve this answer
    
This is not based on the array described by Jake. –  Benoit Thiery Mar 21 '11 at 10:28
    
@Benoit: sure is, if he pass the array to this function it'll work fine. The only case where the above will fail is funny machines with bytes not being 8 bits wide. –  Erik Mar 21 '11 at 10:29
    
uint8_t type would be clearer, or more appropriate, here. –  edA-qa mort-ora-y Mar 21 '11 at 10:37
    
You shouldn't need the != 0 part. Simply masking and implicit conversion would be enough. –  edA-qa mort-ora-y Mar 21 '11 at 10:38
    
Yes, but it's not nearly as readable, since it involves an implicit conversion. –  James Kanze Mar 21 '11 at 10:44

this is working !

#define GET_BIT(p, n) ((((unsigned char *)p)[n/8] >> (n%8)) & 0x01)

int main()
{
    int myArray[2] = { 0xaaaaaaaa, 0x00ff00ff };
    for( int i =0 ; i < 2*32 ; i++ )
        printf("%d", GET_BIT(myArray, i));
    return 0;
}

ouput :

0101010101010101010101010101010111111111000000001111111100000000

Be carefull of the endiannes !

share|improve this answer

First, if you're doing bitwise operations, it's usually preferable to make the elements an unsigned integral type (although in this case, it really doesn't make that much difference). As for accessing the bits: to access bit i in an array of n int's:

static int const bitsPerWord = sizeof(int) * CHAR_BIT;
assert( i >= 0 && i < n * bitsPerWord );
int wordIndex = i / bitsPerWord;
int bitIndex = i % bitsPerWord;

then to read: return (array[wordIndex] & (1 << bitIndex)) != 0; to set: array[wordIndex] |= 1 << bitIndex; and to reset: array[wordIndex] &= ~(1 << bitIndex);

Or you can use bitset, if n is constant, or vector or boost::dynamic_bitset if it's not, and let someone else do the work.

share|improve this answer

You can use something like this:

!((array[30] & 2) == 0)

array[30] is the integer.

& 2 is an and operation which masks the second bit (2 = 00000010)

== 0 will check if the mask result is 0

! will negate that result, because we're checking if it's 1 not zero....

share|improve this answer
1  
4 is 0100, not 0010 –  user623879 Mar 21 '11 at 10:19
    
right... lol, fixed –  Yochai Timmer Mar 21 '11 at 10:20

You need bit operations here...

if(array[5] & 0x1)
{
//the first bit in array[5] is 1
}
else
{
//the first bit is 0
}

if(array[5] & 0x8)
{
//the 4th bit in array[5] is 1
}
else
{
//the 4th bit is 0
}

0x8 is 00001000 in binary. Doing the anding masks all other bits and allows you to see if the bit is 1 or 0.

int is typically 32 bits, so you would need to do some arithmetic to get a certain bit number in the entire array.

share|improve this answer

EDITED based on comment below - array contains int of 32 bits, not 8 bits uchar.

int pos = 241; // I start at index 0
bool bit242 = (array[pos/32] >> (pos%32)) & 1;
share|improve this answer
2  
His array is int - not char/unsigned char - you can't use /8 and %8 –  Erik Mar 21 '11 at 10:20
    
You can't really assume that sizeof(int) is 4 either... –  Erik Mar 21 '11 at 10:29
    
Or that CHAR_BIT is 8:-). But the division is on pos; an assert on the value should precede the code anyway: negatives aren't the only problem: –  James Kanze Mar 21 '11 at 10:47

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.