Home/ Questions/Q 8728305
In Process

The Archive Base Latest Questions

Editorial Team
  • 0
Asked: 2026-06-13T08:36:30+00:00

I have the following part of C code: char c; int n = 0;

  • 0

I have the following part of C code:

char c;
int n = 0;
while ( (c = getchar()) != EOF ){
    if (c == "\n"){
        n++;
    }
}

during compilation, compiler tells me 

warning: comparison between pointer and integer [enabled by default]

The thing is that if to substitute "\n" with '\n' there are no warnings at all.
Can anyone explain me the reason? Another strange thing is that I am not using pointers at all.

I am aware of the following questions

but in my opinion they are unrelated to my question.

PS. If instead of char c there will be int c there will be still warning.

Share

Leave an answer

You must login to add an answer.

Need An Account,

1 Answer

  1. Editorial Team

    • '\n' is called a character literal and is a scalar integer type.

    • "\n" is called a string literal and is an array type. Note that arrays decay to pointers and so that’s why you’re getting that error.

    This may help you understand:

    // analogous to using '\n'
char c;
int n = 0;
while ( (c = getchar()) != EOF ){
    int comparison_value = 10;      // 10 is \n in ascii encoding
    if (c == comparison_value){
        n++;
    }
}

// analogous to using "\n"
char c;
int n = 0;
while ( (c = getchar()) != EOF ){
    int comparison_value[1] = {10}; // 10 is \n in ascii encoding
    if (c == comparison_value){     // error
        n++;
    }
}
    • 0