6

I want to convert a float number for example 2.45 to the 4 byte char array. so the 2.45 should look like this '@' 'FS' 'Ì' 'Í' which is binary the ieee representation of 2.45 = 01000000 00011100 11001100 11001101?

I've solved the problem but it has a bad complexity. do you have any good ideas?

Thanks for the good answers.

can you please tell me the way back from the char array to the float number ?

  • 2
    How about char a[sizeof the_float]; memcpy(char_array, &the_float, sizeof the_float)? – user529758 Aug 16 '13 at 10:17
  • 2
    'Ì' and 'Í' are only the representation of 11001100 11001101 in one character set. – glglgl Aug 16 '13 at 10:30
7

You have a few ways of doing this, including these two:

  1. Use typecasting and pointers:

    float f = 2.45;
    char *s = (char *) &f;
    

    Note that this isn't safe in any way and that there is no string terminator after the "string".

  2. Use a union:

    union u
    {
        float f;
        char s[sizeof float];
    };
    
    union u foo;
    foo.f = 2.45;
    

    The char array can now be accessed to get the byte values. Also note like the first alternative there is no string terminator.

  • "this actually exploits undefined behavior" - could you explain that further please? – Jimbo Aug 16 '13 at 10:23
  • 2
    memcpy() is preferred over both of your approaches. (By the way, the first method is "safe" as long as the aliasing pointer is (signed or unsigned) char *. And the second method doesn't invoke UB either. – user529758 Aug 16 '13 at 10:24
  • @Jimbo Remember that all members of a union shares the same memory. This means that you can only reliably get the value of the last set member. If I set the f member in my example, I should only get f after that until I set another member. Doing otherwise is not really undefined but may cause unexpected values. – Some programmer dude Aug 16 '13 at 10:25
  • @H2CO3: "memcpy() is preferred"... is this because of type punning? If not could you explain further please? – Jimbo Aug 16 '13 at 10:39
  • 2
    @12oni A tiny bit of creativity please! If memcpy() worked in this direction, surely it will work the other way around. – user529758 Aug 16 '13 at 11:14
13

Just use memcpy:

#include <string.h>

float f = 2.45f;
char a[sizeof(float)];

memcpy(a, &f, sizeof(float));

If you require the opposite endianness then it is a trivial matter to reverse the bytes in a afterwards, e.g.

int i, j;

for (i = 0, j = sizeof(float) - 1; i < j; ++i, --j)
{
    char temp = a[i];
    a[i] = a[j];
    a[j] = temp;
}
  • and how can I change the endian? – 12oni Aug 16 '13 at 10:35
  • 1
    @12oin tmp = a[0]; a[0] = a[3]; a[3] = tmp; tmp=a[1]; a[1] = a[2]; a[2] = tmp; to change the endian. – nos Aug 16 '13 at 10:38

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