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I like to change the number of decimal digits showed whenever I use a float number in C. Does it have something to do with the FLT_DIG value defined in float.h? If so, how could I change that from 6 to 10?

I'm getting a number like 0.000000 while the actual value is 0.0000003455.

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1
  • Are you talking about what your debugger shows you? Or is it about what some output of your program presents?
    – Frunsi
    Oct 6, 2012 at 16:35

4 Answers 4

Reset to default
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There are two separate issues here: The precision of the floating point number stored, which is determined by using float vs double and then there's the precision of the number being printed as such:

float foo = 0.0123456789;
printf("%.4f\n", foo);  // This will print 0.0123 (4 digits).

double bar = 0.012345678912345;
printf("%.10lf\n", bar);  // This will print 0.0123456789
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  • Absolutely correct. Both "float" (and "double") can store the value "0.0000003455", but you need to specify "%.10xx" in order to print it. Great response :)!
    – paulsm4
    Oct 6, 2012 at 16:36
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    Technically neither float nor double can store the value 0.0000003455, although they both can store something close enough.
    – Pascal Cuoq
    Oct 6, 2012 at 16:38
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    @paulsm4 You really need to take a crash course about floating-point representation instead of trolling around on SO and downvoting here and there. +1 for Pascal Cuoq.
    – user529758
    Oct 6, 2012 at 16:43
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I experimented this problem and I found out that you cannot have great precision with float they are really bad .But if you use double it would give you the right answer. just mention %.10lf for precision upto 10 decimal points

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-1

You're running out of precision. Floats don't have great precision, if you want more decimal places, use the double data type.

Also, it seems that you're using printf() & co. to display the numbers - if you ever decide to use doubles instead of floats, don't forget to change the format specifiers from %f to %lf - that's for a double.

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  • 3
    %f by itself is already for double. According to C99's 7.19.16. Besides, a double is not needed to represent 0.0000003455 closely. Single-precision gives you 0x1.72fa52p-22 or approximately 3.455000126e-07.
    – Pascal Cuoq
    Oct 6, 2012 at 16:34
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    @paulsm4 And now you can revoke your unjust downvote. I was not talking about how floating-point numbers are displayed (apart from the good advice for OP) - it's the users failure if he doesn't know about precision and witdh specifiers. Also note that downvotes should indicate technical inaccuracies only, of which this answer doesn't even have a single one.
    – user529758
    Oct 6, 2012 at 16:38
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    "downvotes should indicate technical inaccuracies only, of which this answer doesn't even have a single one." Errm, what do you call "if you ever decide to use doubles instead of floats, don't forget to change the format specifiers from %f to %lf - that's for a double."? Since the format is for printf and not for scanf, that is a technical inaccuracy. Now, for floating point conversions (in (f)printf), the l length modifier has no effect per the standard, so it doesn't harm to write %lf for doubles, but it's not necessary.
    – Daniel Fischer
    Oct 6, 2012 at 18:29
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    Right, we're not talking about scanf, where there is a difference between %f (for floats) and %lf (for doubles), we're talking about printf where both are completely equivalent. Read the specifications in the standard, 7.19.6.1 in C99, 7.21.6.1 in C11 for fprintf, the printf specification says it's equivalent to fprintf(stdout, format_and_other_args).
    – Daniel Fischer
    Oct 6, 2012 at 18:40
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    First, this answer is flat wrong. Changing from float to double does not change how the value .0000003455 (converted to float or double) is printed with the default “%.f” specification, which is apparently what the questioner did. The statement “You're running out of precision” is false. Second, as explained previously, changing “%f” to “%lf” in an fprintf specification does nothing. Third, what is the basis for claiming downvotes should be based on technical inaccuracies only? An answer that is technically correct (unlike this one) but unclear or otherwise not useful deserves to be downvoted.
    – Eric Postpischil
    Oct 6, 2012 at 23:27
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@kosmoplan - thank you for a good question!

@epsalon - thank you for a good response. My first thought, too, was "float" vs. "double". I was mistaken. You hit it on the head by realizing it was actually a "printf/format" issue. Good job!

Finally, to put to rest some lingering peripheral controversy:

/*
 SAMPLE OUTPUT:
  a=0.000000, x=0.012346, y=0.012346
  a=0.0000003455, x=0.0123456791, y=0.0123456789
 */
#include <stdio.h>

int
main (int argc, char *argv[])
{
  float  x = 0.0123456789, a = 0.0000003455;
  double y = 0.0123456789;
  printf ("a=%f, x=%f, y=%lf\n", a, x, y);
  printf ("a=%.10f, x=%.10f, y=%.10lf\n", a, x, y);
  return 0;
}
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