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MASSIVE EDIT:

I have a long int variable that I need to convert to a signed 24bit hexadecimal string without the "0x" at the start. The string must be 6 characters followed by a string terminator '\0', so leading zeros need to be added.

Examples: [-1 -> FFFFFF] --- [1 -> 000001] --- [71 -> 000047]

Answer This seems to do the trick:

long int number = 37;
char string[7];

snprintf (string, 7, "%lX", number);
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Just for clarification, what you you mean by signed hex, e.g. what should -1 be converted to? –  Charles Bailey Apr 29 '10 at 20:56
    
FFFFFF (if I have done my conversion right :s) –  Cheetah Apr 29 '10 at 21:01
    
OK, that looks like conversion to unsigned long and printing an unsigned hex number. –  Charles Bailey Apr 29 '10 at 21:14
    
So you actually want a 24-bit hex string? –  Fred Larson Apr 29 '10 at 21:24
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The %lx conversion requires an unsigned long but you are passing it a long. Although it's working for you as-is, a cast to unsigned long is required for formal correctness. Your current method will also give the wrong values for most negative numbers - eg try -256. –  caf Apr 30 '10 at 0:16
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4 Answers

up vote 7 down vote accepted

Because you only want six digits, you are probably going to have to do some masking to make sure that the number is as you require. Something like this:

sprintf(buffer, "%06lx", (unsigned long)val & 0xFFFFFFUL);

Be aware that you are mapping all long integers into a small range of representations. You may want to check the number is in a specific range before printing it (E.g. -2^23 < x < 2^23 - 1)

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This is the only complete answer right now (the conversion to unsigned long is required). –  caf Apr 30 '10 at 0:13
    
What determines what mapping you append? Say I was after a 32bit (8 character string), what mapping would you add then? (Obviously you'd change the format flags to 08 too) –  Cheetah Apr 30 '10 at 11:11
    
Effectively, the mapping is x -> x (mod 2^24), so numbers >2^24 wrap around. With eight character, 32 bit string, it would be x -> x (mod 2^32) whether this is an injection (reversible) depends on how big unsigned long is on the platform in question. –  Charles Bailey Apr 30 '10 at 15:12
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Look at sprintf. The %lx specifier does what you want.

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Furthermore, you should use snprintf rather than sprintf if you can. –  dreamlax Apr 29 '10 at 21:06
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Use itoa. It takes the desired base as an argument.

Or on second thought, no. Use sprintf, which is standard-compliant.

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In the title you say you want a signed hex string, but all your examples are unsigned hex strings. Assuming the examples are what you want, the easiest way is

sprintf(buffer, "%06X", (int)value & 0xffffff);
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