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I have a simple question

How to simply convert integer (getting values 0-8) to char, e.g. char[2] in C?

Thanks

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3  
Why do you need 2 char? Please give an example of input and corresponding output. –  Oli Charlesworth Feb 19 '11 at 9:52
    
I dont understand why you need . –  gcc Feb 19 '11 at 9:59

4 Answers 4

up vote 2 down vote accepted
main()
{
  int i = 247593;
  char str[10];

  sprintf(str, "%d", i);
// Now str contains the integer as characters
}

Hope it will be helpful to you.

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Use this. Beware of i's larger than 9, as these will require a char array with more than 2 elements to avoid a buffer overrun.

char c[2];
int i=1;
sprintf(c, "%d", i);
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You can't truly do it in "standard" C, because the size of an int and of a char aren't fixed. Let's say you are using a compiler under Windows or Linux on an intel PC...

int i = 5;
char a = ((char*)&i)[0];
char b = ((char*)&i)[1];

Remember of endianness of your machine! And that int are "normally" 32 bits, so 4 chars!

But you probably meant "i want to stringify a number", so ignore this response :-)

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If you want to convert an int which is in the range 0-9 to a char, you may usually write something like this:

int x;
char c = '0' + x;

Now, if you want a character string, just add a terminating '\0' char:

char s[] = {'0' + x, '\0'};

Note that:

  1. You must be sure that the int is in the 0-9 range, otherwise it will fail,
  2. It works only if character codes for digits are consecutive. This is true in the vast majority of systems, that are ASCII-based, but this is not guaranteed to be true in all cases.
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1  
Actually, the C standard guarantees that the representations of '0' to '9' are consecutive and ascending. –  Oli Charlesworth Feb 19 '11 at 10:05

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