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I was writing a c program whose job was to convert a Celsius temperate to Fahrenheit, and vice-versa. I wanted my user to provide input in the form

 double, char

Where the character would be either a 'F' for Fahrenheit to Celsius conversion, or 'C' for Celsius to Fahrenheit conversions. I wrote this program to do it. The Program

 #include <stdio.h>
 int main( )
 {
     char in[10];
     int i;
     printf("Welcome to the Tempurate Conversion Enter a ");
     scanf("%s %d", i, &in);
     printf(i);
     printf(in);
     return 0;
 }

When I compile this program I get this warning: The Warning

 CtoF.c: In function 'main':
 CtoF.c:8:4: warning: passing argument 1 of 'printf' makes pointer from integer w
 ithout a cast [enabled by default]
 c:\mingw\bin\../lib/gcc/mingw32/4.6.2/../../../../include/stdio.h:294:37: note:
 expected 'const char *' but argument is of type 'int'

I when ran to the program and gave this input: The Input

 3 C

and got this output: The Output

 3@

I want to know the meaning of the warning message and what I can to do to fix it.

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closed as off-topic by H2CO3, Jonathon Reinhart, Mark, ldav1s, Antti Haapala Aug 4 '13 at 5:42

This question appears to be off-topic. The users who voted to close gave this specific reason:

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If this question can be reworded to fit the rules in the help center, please edit the question.

1  
scanf("%s %d", i, &in); -> scanf("%d %s", i, in); (note the order of format specifiers and the removed ampersand symbol - that's not how you use the address-of operator.) –  user529758 Aug 3 '13 at 22:48
1  
@H2CO3; Why you removed & from i? –  haccks Aug 3 '13 at 23:01
1  
@haccks Because I made a typo. I only wanted to remove it from before in. (Thanks for pointing it out.) –  user529758 Aug 3 '13 at 23:02
4  
But hey, why is this such a great question that it got +3? OP obviously didn't even bother reading a basic C tutorial... –  user529758 Aug 3 '13 at 23:05
4  
This is just a classic case of RTFM. –  Jonathon Reinhart Aug 3 '13 at 23:25

3 Answers 3

Problem is with format specifiers in scanf and printf.

 scanf("%s %d", i, &in);

should be

 scanf("%d %s", &i, in);

And

 printf(i);
 printf(in);

should be

printf("%d", i);
printf("%s", in);

And a side note:

I wanted my user to provide input in the form double, char

For this you should have to change int i to

 double i;

and conversion specifier %d to %lf in scanf:

scanf("%lf %s", &i, in);
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Your printf statement is wrong.

printf expects a char array like char in[10]. However you are passing an integer. int i.

The warnings informs you that because printf expects a pointer parameter and you are passing an integer, this integer gets cast to a pointer.

So if your integer has the value of 100 it now tries to read from memory address located at 100 and keeps dumping the memory untill a \0 character/value is found

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printf works in the following way:

the first argument to printf tells how many arguments are expected

printf( "%d", n ); 

tells that one argument is expected (an int pointer)

printf( "%d %d", n, m );

tells that there are two arguments so your syntax is wrong

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