5

I ran this simple program, but when I convert from int to double, the result is zero. The sqrt of the zeros then displays negative values. This is an example from an online tutorial so I'm not sure why this is happening. I tried in Windows and Unix.

/* Hello World program */

#include<stdio.h>
#include<math.h>

main()

{  int i;

   printf("\t Number \t\t Square Root of Number\n\n");

   for (i=0; i<=360; ++i)
        printf("\t %d \t\t\t %d \n",i, sqrt((double) i));


}
1
  • sqrt never returns negative values. Your problems run very deep. The fact that you don't realise that we would need to see your code to answer this is your fundamental problem. I hope you don't think that the computer can do the same! Commented Jan 28, 2012 at 19:26

3 Answers 3

19

Maybe this?

int number;
double dblNumber = (double)number;
7
  • This is, indeed, how one converts a number to a double, but that's not the asker's issue.
    – Borealid
    Commented Jan 28, 2012 at 21:05
  • 13
    Oddly, the title of his question was. Oh well. Commented Jan 28, 2012 at 22:34
  • 1
    No need to add the cast (double) as you've already annotated the type and the compiler will implicitly do the cast. Alternatively, you could just change the type annotation to auto dblNumber = (double)number;, this way you don't have to "maintain" the type in two places (in case you want to change it to say a float later). Commented Jan 18, 2023 at 23:42
  • 1
    @MichaelHall The question is about C, not C++. Commented Sep 19, 2023 at 22:16
  • 1
    Good point @MehdiCharife - I missed that distinction. I can't seem to edit my comment anymore though unfortunately Commented Sep 21, 2023 at 3:18
8

The problem is incorrect use of printf format - use %g/%f instead of %d

BTW - if you are wondering what your code did here is some abridged explanation that may help you in understanding:

printf routine has treated your floating point result of sqrt as integer. Signed, unsigned integers have their underlying bit representations (put simply - it's the way how they are 'encoded' in memory, registers etc). By specifying format to printf you tell it how it should decipher that bit pattern in specific memory area/register (depends on calling conventions etc). For example:

unsigned int myInt = 0xFFFFFFFF;
printf( "as signed=[%i] as unsigned=[%u]\n", myInt, myInt );

gives: "as signed=[-1] as unsigned=[4294967295]"

One bit pattern used but treated as signed first and unsigned later. Same applies to your code. You've told printf to treat bit pattern that was used to 'encode' floating point result of sqrt as integer. See this:

float myFloat = 8.0;
printf( "%08X\n", *((unsigned int*)&myFloat) );

prints: "41000000"

According to single precision floating point encoding format. 8.0 is simply (-1)^0*(1+fraction=0)*2^(exp=130-127)=2*3=8.0 but printed as int looks like just 41000000 (hex of course).

3
  • Thank you. Strange that this would go unnoticed on a tutorial. I used %f and it works fine now.
    – user994165
    Commented Jan 28, 2012 at 20:37
  • The tutorial would not have used %d for a floating point value Commented Jan 28, 2012 at 21:04
  • @David: Have you really never seen a tutorial, book etc without a single typo/bug? It happens - really.
    – Artur
    Commented Jan 28, 2012 at 21:19
3

sqrt() return a value of type double. You cannot print such a value with the conversion specifier "%d".

Try one of these two alternatives

        printf("\t %d \t\t\t %f \n",i, sqrt(i)); /* use "%f" */
        printf("\t %d \t\t\t %d \n",i, (int)sqrt(i)); /* cast to int */

The i argument to sqrt() is converted to double implicitly, as long as there is a prototype in scope. Since you included the proper header, there is no need for an explicit conversion.

3
  • I do not understand why it works with to give an int to sqrt() tough, because sqrt() is declared as to only take a double value as an argument. In C99: double sqrt (double x); How does that work and my compiler let it pass? Commented Dec 12, 2019 at 17:37
  • 1
    @RobertS: Because you included <math.h> the compiler knows the argument to sqrt() must be double, so the compiler does the conversion automatically. Using sqrt() (or any function really) without a prototype in scope should be considered an error.
    – pmg
    Commented Dec 12, 2019 at 22:00
  • Thank you very much. I also posted a question about this issue here: stackoverflow.com/questions/59310504/… . If you want an upvote plus for your answer, which i like to give, you can post your answer also there and make it also available to read for others who have the same issue. Commented Dec 13, 2019 at 10:10

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