-1
#include <stdio.h>

int main()
{
    int a;
    printf(scanf("%d",&a));
    return 0;
}

I got this message "Segmentation fault (core dumped)"

2
  • 2
    You are passing the int return from scanf into printf(), which is expecting a string pointer as the first argument: BANG. Don't write 'clever' code - it just causes problems. Aug 19, 2018 at 14:32
  • 2
    You don't provide a format specifier for printf. Ex: printf("%d", scanf("%d",&a)); Of course, that won't print what you think it will. Aug 19, 2018 at 14:32

4 Answers 4

5

Format for printf() function is :-

printf(const char *format, ...)

You have to provide a string (format string with format specifiers) as argument for function printf().

You may Try :-

printf("%d",scanf("%d",&a)); // with format string

This will print 1 if scanning is successful . Here %d in format string for integer parameter.

To read and print variable a , Try :-

 scanf("%d",&a);  // reading
 printf("%d",a);  // printing
2

Read your compiler warnings.

prog.c:8:12: warning: passing argument 1 of ‘printf’ makes pointer from integer without a cast [-Wint-conversion]
     printf(scanf("%d",&a));
            ^~~~~

printf wants a string as first argument. You're giving it an integer.

1

You want to print 'a', so you should do this way

scanf("%d",&a);
printf("%d", a);

The scanf() return the total number of characters written link

1

scanf looks at your format string, sees %d and matches it to the address of an int, which you provided with &a. scanf will return EOF if there is an error while trying to read a value, else it will return the number of items successfully matched as an int. For example, if you typed 123, scanf("%d", &a) == 1 is true, but if you typed q123, scanf("%d", &a) == 0 is true.

printf requires a format string just like scanf, and it uses that format to print the values of the arguments. It has no way of knowing that the format used for scanf is the same format you wanted to use for printing too, and you did not provide a string, which is a kind of pointer, containing the format for printing your arguments. This is the problem with your code.

Integers, such as the int value that scanf returns, can be converted to pointers without you telling the compiler to perform the conversion. As a consequence, a compiler can complain that you're doing something potentially problematic (warning: passing argument 1 of ‘printf’ makes pointer from integer without a cast), but that code will be allowed to compile and execute.

When you see a warning like that, look at what type the function requires for that argument and the type of the value you used as that argument. Chances are very good that the compiler is trying to help you avoid a mistake like printf(scanf("%d", &a));

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