21

I'm trying to work out why a larger problem is occurring, using a smaller program as an example. This smaller program does not work, leading me to believe it is my understanding of the function that is flawed.

As far as I (had) believed, the following program should initialise a string with up to 30 characters, then take the number '5' to nine significant figures, and turn it into that string. The program should then print the value '5.00000000'. However, the program prints the value 7.96788(...). Why is this?

#include <stdio.h>

int main()
{
    char word[30];
    sprintf(word, "%.9g", 5);
    printf(word);
    return 0;
}
  • 1
    You are calling printf without a format string argument? – TJD Nov 22 '11 at 19:35
  • Your program causes undefined behaviour - anything could happen. – Carl Norum Nov 22 '11 at 19:35
  • 1
    Depending on the compiler you are using, enabling all warnings (such as with -Wall for gcc) should give you a warning here telling you exactly what is wrong. – Chris Dodd Nov 22 '11 at 19:44
22

This is because 5 is an integer (int), and you're telling sprintf to pretend that it's a double-precision floating-point number (double). You need to change this:

sprintf(word,"%.9g", 5);

to either of these:

sprintf(word,"%.9g", 5.0);
sprintf(word,"%.9g", (double) 5);
1

I see two problems:

  1. As others already said, you have to specify a double instead of an int. Your compiler may have a switch to print out warnings in these cases (-Wall in gcc, for example).

  2. To print out 5.00..., you should use %f instead of %g.

That gives sprintf(word,"%.9f", (double) 5); as correct syntax.

  • 1
    In my experience very few compilers have such a warning; GCC is the only one I know of. Specifically the option is -Wformat, -Wall would be my recommendation too, but switches on other warnings. Also on older versions of GCC -Wall does not include -Wformat. – Clifford Nov 22 '11 at 19:50
  • Most compilers might have been an exaggeration. Fixed. For the record, icl also warns about this. – Dennis Nov 22 '11 at 19:57
1

Use 5.0 instead. 5 by itself is an integer and will get bitmangled into looking like a float, which is where your 7.xxxx comes from.

0

Or you can change the descriptor format: "%.9d"

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.