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How can I see the bytes/bits of a variable in C? In terms of binary, just zeros and ones.

My problem is that I want to test to see if any zeros exist in the most significant byte of variable x. Any help would be appreciated.

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5 Answers 5

Use the logical AND operator &. For example:

char c = ....
if ( (c & 0xFF) == 0xFF) ... // test char c for zeroes

You may want to use shifts and macros to automate it, instead of using numeric constants, because for different types you'll need different values to test the MSB. You can get the value for shifts using sizeof.

// test MSB of an int for zeroes
int i = ...
if ( ( i & (0xFF << 8*(sizeof(int)-1))) == (0xFF<<8*(sizeof(int)-1))) ...
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if sizeof(int) == 4 how is 0XFF << 3 testing for MSB ? –  keety Apr 2 '12 at 18:01
    
@keety yeah, good catch –  littleadv Apr 2 '12 at 18:05

You can use following test

var & (1 << N)

To check if bit N is set in var. Most significant bit depends on the datatype of var.

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Print the memory byte by byte, i.e. from 0 to sizeof(x) (if x happens to be your variable). Then, when printing each byte, print all eight bits individually.

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if(x & 0x80) // assuming x is a byte(char type)
{
   // msb is set
}
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To view you could use %X to get the hexadecimal representation of the number as below:

 unsigned number = 30;
 printf("%X\n",number);  

however to check if there are zero's in the most significant byte of the number you could
do the following assuming sizeof(int) == 4

  unsigned number = 30;
  if(number >> 24 != 0XFF ) {
     printf("zero exists in the most significant byte\n";
  }
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