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In my homework for my C class, we have to write a program that checks if an integer is prime. I am getting an error at the sqrt() function. My professor told me that num must be an integer and we must use the sqrt() function. I thought the problem was that the sqrt() function can't be used on an integer but my professor told me that it can, and that I was getting an error from something else. Do you guys see the problem?

int primality(int num)
{

int isprime;

    /*check if num is prime*/
    for (int i = 2; i <= sqrt(num); i++)
    {
        if (num % i == 0)
            isprime = 0; /*is not prime*/
        else 
            isprime = 1; /*is prime*/
    }

    if (isprime == 0)
        return 0;
    elseif (isprime == 1)
        return 1;
}

EDIT: Yes I am using math.h and compiling as C code.

The error msg is "Error: More than one instance of overloaded function "sqrt" matches the argument list.

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1  
And the error message you got was... ? Without seeing that, (a) did you include math.h? (b) did you link with libm? (I'm ignoring any other mistakes in the program, @CarlNorum has pointed out one) –  derobert Oct 31 '11 at 22:39
1  
In this code you will return from every iteration of the loop. In other words you will only do one iteration. This code simply tests whether your number is even or odd. By the way, the corrected function should be named isprime. And can't you use bool rather than int for a logical value? –  David Heffernan Oct 31 '11 at 22:42
6  
How are you compiling? I'm smelling C++ in the error message. –  bitmask Oct 31 '11 at 22:56
    
I am using Visual C++ to write and compile my code. Could that be the problem? I have never had any trouble using it before. –  Petefic Oct 31 '11 at 23:09
    
You can rewrite i <= sqrt(num) as i * i <= num –  caf Nov 1 '11 at 6:28

6 Answers 6

up vote 4 down vote accepted

The C language does not have "overloads". My bet is that you are compiling your code as C++, not C. If you're using GCC, compile with gcc, not g++. If you are using Visual Studio, there is an option in the properties of the project:

  1. right click on your project
  2. click properties
  3. click on C/C++
  4. click on advanced
  5. set the property "compile as" to C Code (/TC)

In either case, name your file with a .c extension (lowercase 'c').

Indeed, in C there is only one sqrt, defined as

double sqrt(double);

and integers convert to double.

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I am using Visual C++ and have the file named with a .c extension. I will look around in the settings for the Compile as C Code option though. –  Petefic Oct 31 '11 at 23:13
    
@Petefic: I already had this problem. VC++ doesn't seem to care what extension your file is, and it really seems you're compiling to C++ code here. –  Alexandre C. Oct 31 '11 at 23:16
    
I changed the setting, still getting the error. –  Petefic Oct 31 '11 at 23:29
    
There is no sqrt(int,...) in cmath so you will have to cast your ints to double like this sqrt((double)num) to match one of sqrt() definitions. Also you are using C++ as you have declared and initialized int i = 2 directly in your for loop head section. :) –  ludesign Oct 31 '11 at 23:56
1  
@ludesign: Nope, that for loop usage is standard C. –  R.. Nov 1 '11 at 5:21

You don't want to return 1 inside your loop - it needs to be after the loop completes. Your professor is right that sqrt(num) will work - num will be promoted to double automatically - C has rules for type changes in function calls, etc. You do need to include math.h if you haven't done that elsewhere in your program - what error are you getting?

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1  
There is another problem—you actually want <= sqrt (otherwise, 9 is prime). And since doubles aren't precise, you need to deal with that too. –  derobert Oct 31 '11 at 22:42
    
+1 @derobert, absolutely. –  Carl Norum Oct 31 '11 at 22:44
    
@derobert: I don't see any inexactness issues to deal with here... If x is a perfect square no wider than 53 bits, sqrt(x) has an exact result, and IEEE 754 mandates that the exact result be returned. –  R.. Nov 1 '11 at 5:24
1  
@R..: Even assuming IEEE 754, int can be 64 bits. –  derobert Nov 1 '11 at 17:23
    
Indeed, that's why I mentioned the condition. –  R.. Nov 1 '11 at 18:30

Your logic is wrong right here:

    if (num % i == 0)
        return 0; /*is not prime*/
    else 
        return 1; /*is prime*/

If you think about it, if the number is not divisible by two, your function immediately returns 1.

You are returning too early. Remember that a return essentially stops your function and breaks out of it.

Instead, try to break out only when the number is composite and return True only when you are sure that it is prime.

Just as a side note, your function will register squares of primes (i.e. 9, 25, 49) as prime because you are using the < sign in your for loop.

Change it to a <= sign, as that will account for the square root being the only divisor of the number.

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2  
You've just done the homework –  David Heffernan Oct 31 '11 at 22:45
    
Well, mostly done the homework, as you haven't yet dealt with FP not being precise. (int)(sqrt(100)) == 9 may be true, for all we know. –  derobert Oct 31 '11 at 22:49
    
Sorry, it's an automatic reaction. –  Blender Oct 31 '11 at 22:51
    
I've edited my post, I am still getting the error –  Petefic Oct 31 '11 at 23:00

Did you #include <math.h>?

Also, according to your function 1, 2, and 3 come back as not prime... Might want to fix that. I'd offer more help but it sounds like this is for homework and I'd rather not just give you the answer (some universities consider it cheating).

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Yes, I am using math.h. –  Petefic Oct 31 '11 at 23:05
    
Since you didn't post what errors you were getting, that was just first one I would think of (even in my own code I forget an include every now and then). –  jerslan Oct 31 '11 at 23:55
    
If you're getting an error on sqrt(num) with num as an int, you could try casting it as a float. –  jerslan Oct 31 '11 at 23:56

To answer your actual question: sqrt() does not have an overload for int, but it has overloads for both double and float, and so the compiler cannot guess which one to use.

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The problem is that the sqrt function does not take an integer as a argument. You will want to do

sqrt((double)n) or sqrt((float)n) to fix it.

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