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Why does this not work as expected?

int main()
    unsigned char louise, peter;

    printf("Age of Louise: ");
    scanf("%u", &louise);

    printf("Age of Peter: ");
    scanf("%u", &peter);

    printf("Louise: %u\n", louise);
    printf("Peter: %u\n", peter);

    return 0;


Age of Louise: 12
Age of Peter: 13
Louise: 0
Peter: 13

But if I swap variable declarations it works:

unsigned char peter, louise;


Age of Louise: 12
Age of Peter: 13
Louise: 12
Peter: 13

I've also noticed that using int or unsigned int works without needing to swap variables, but chardoesn't.

I've tried putting printf("%u", louise); just after the scanf() for louise and the value is saved correctly. And if I comment out the second scanf() it also works fine...

The "problem" shows on Windows (DevCpp) and Linux (kwrite + make). Is that a bug of the compiler, or mine?

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Isn't %u an unsigned integer? Sounds rather dangerous having scanf squeeze in a 2+ bytes big thing into a 1 byte variable. – Skurmedel Feb 3 '10 at 13:48
Try compiling with -Wformat (also turned on by -Wall) in GCC and it'll automatically catch this error. – Roger Pate Feb 3 '10 at 13:56

2 Answers 2

up vote 1 down vote accepted

That is your bug, your variables were of type unsigned char which is 1 byte, however, you entered 12 which is 4 bytes (a unsigned int), that caused an overflow (implementation defined by the compiler/runtime), and that would explain it overwriting the next variable in memory. You used the %u specifier for printf which is an unsigned int, for a unsigned char variable, that is incorrect and does not match up. That explains, as you have discovered yourself, that using an unsigned int or int works, as there was sufficient room to hold the values on input.

Hope this helps, Best regards, Tom.

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Oh! Now I get it! Thanks! How do I make to get a number to a char with scanf()? Or I have to declare them integer? – xOneca Feb 3 '10 at 14:10
@xOneca: declare them as integer. Why did you use unsigned char anyway? :) – t0mm13b Feb 3 '10 at 14:31
because I know nobody older than 255 years. I am used to use the smallest variable I can, to save memory. I see I can't do that always... :-( – xOneca Feb 3 '10 at 14:58
@xOneca: that's ok. That's a healthy attitude..that would have been the attitude 15-20 years pc's have a lot of memory...but still a good approach to squeezing a few more bits... :) – t0mm13b Feb 3 '10 at 15:09

Because %u reads and stores an unsigned int, which is very likely larger than the single unsigned char you have. This leads to adjacent values being overwritten.

There is no way to read an integer string (such as "42") and store it in a char. You must go via an int. Example:

int tmp;
char my_char;

if(scanf("Enter a number: %d", &tmp) == 1)
  my_char = (unsigned char) tmp;
share|improve this answer
Yeah! That must be. Thanks! – xOneca Feb 3 '10 at 14:10
Oh, thanks for the sample code! – xOneca Feb 3 '10 at 16:07

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