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In a for loop, I am trying to use printf to print the current i value. This line: printf((char *) i); is giving me runtime errors. Why is this?!

Below is a quick fizzbuzz solution that is doing this:

void FizzBuzz()
{
    for (int i = 0; i < 20; i++)
    {
    	printf((char *)i);
    	if ((i % 3 == 0) && (i % 5 == 0))
    	{
    		printf("FizzBuzz \n");
    	}
    	else if (i % 3 == 0)
    	{
    		printf("Fizz \n");
    	}
    	else if (i % 5 == 0)
    	{
    		printf("Buzz \n");
    	}
    	else 
    	{
    		printf("%d\n", i);
    	}
    }
}
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For the record, instead of doing if((i % 3 == 0) && (i % 5 == 0)) you could just do if(i % 15 == 0). –  Chris Lutz Nov 24 '09 at 4:02
    
This is true! 0 thought was put into this, it was just a generic example that everybody should hopefully be familiar with. –  Chris Nov 24 '09 at 4:04

5 Answers 5

up vote 6 down vote accepted

Because that's not how printf works. You want this instead:

printf("%d\n", i);

Or even better,

std::cout << i;
share|improve this answer
1  
std::cout << i << std::endl; to write an exact equivalent of your printf line –  Vinko Vrsalovic Nov 24 '09 at 3:43
    
This is definitely correct, but I'm sitll getting a runtime error and it breaks in dbghook.c.. –  Chris Nov 24 '09 at 3:44
2  
std::cout isn't better than printf. Just different. –  Chris Nov 24 '09 at 3:45
1  
Err... Edit your question with your code, Chris. –  Vinko Vrsalovic Nov 24 '09 at 3:47
3  
std::cout is typesafe, and won't break on you with segfaults unless you pass it a real pointer (whereas printf will break if you write the format string improperly). –  Pavel Minaev Nov 24 '09 at 4:13

If you are using C++, you should use cout instead of printf:

#include <iostream>
using namespace std;

int main() {
        int i = 42;
        cout << "The answer is: " << i << endl;
}
share|improve this answer
    
is "using namespace stdl" required for cout? I tried using cout initially and my compiler did not recognize it, but i excluded that line. –  Chris Nov 24 '09 at 3:40
2  
You either do "using namespace std;" or write "std::cout << i << std::endl;" instead. Read about C++ namespaces. –  Vinko Vrsalovic Nov 24 '09 at 3:44

By that statement what you are telling is :"there is a sting starting at location i, display it " Surely that is not what you intended. Use format string %d to print a integer

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The way printf works is that it takes a string like this:

printf( "the number is: " );

If you then want an integer in the last section of the string you need to use an escape character and then pass the int in as another paramater:

printf( "the number is %d", i );

There is more information here on the escape characters you can use.

You will also need to include:

#include <stdio.h>

EDIT

Sorry my terminology was wrong, % followed by a sequence is called a conversion specification not an escape characer.

HTH.

share|improve this answer
    
%d is not what we commonly call an escape character (\n, etc.). –  Pierre Bourdon Nov 24 '09 at 3:50
    
ah yes you're correct. ta. –  0xC0DEFACE Nov 24 '09 at 3:54
    
It's not called a "conversion specification", either, because nothing is converted by printf (if you pass it a char*, and tell it it's an int - e.g. %d - in the format string, you will get U.B.). It's called a "format specifier". –  Pavel Minaev Nov 24 '09 at 4:14
    
My link to some course notes at MIT called it a conversion specification and that sounded fine to me. Either way it certainly isn't an escape character! –  0xC0DEFACE Nov 24 '09 at 4:27

The first argument of printf() is a C-style null-terminated string. It's meant to be used as a format (thus the "f") with % formatting sequences to print the remaining arguments.

By using printf((char *) i); you are instructing the computer to print every byte starting at the address that i points to, until it encounters a null. Unfortunately, given that i is usually used for counters, it probably points to very low memory. Most modern operating systems prohibit access to such memory from user-space programs to prevent bugs from creating security holes, and will send signals to offending programs. The default response to such a signal, unless you trap it, is to kill the process.

To instead display the number stored in i, use printf("%d\n", i);. To display the value of i as a character, try putc((char)i); or printf("%c\n", i);. If i really is a pointer to a character, try putc((char)(*i));.

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