I am trying an example from Bjarne Stroustrup's C++ book, third edition. While implementing a rather simple function, I get the following compile time error:

error: ISO C++ forbids comparison between pointer and integer

What could be causing this? Here is the code. The error is in the if line:

#include <iostream>
#include <string>
using namespace std;
bool accept()
{
    cout << "Do you want to proceed (y or n)?\n";
    char answer;
    cin >> answer;
    if (answer == "y") return true;
    return false;
}

Thanks!

  • 10
    y in your code is a string literal (double quotes) "", a char is only (single quotes) '' – Alex Feb 15 '10 at 2:11
  • 1
    Check your typing. The example in Stroustup has char answer = 0; and if (answer == 'y') return true;. – CB Bailey Feb 15 '10 at 7:56
up vote 35 down vote accepted

You have two ways to fix this. The preferred way is to use:

string answer;

(instead of char). The other possible way to fix it is:

if (answer == 'y') ...

(note single quotes instead of double, representing a char constant).

A string literal is delimited by quotation marks and is of type char* not char.

Example: "hello"

So when you compare a char to a char* you will get that same compiling error.

char c = 'c';
char *p = "hello";

if(c==p)//compiling error
{
} 

To fix use a char literal which is delimited by single quotes.

Example: 'c'

You need the change those double quotation marks into singles. ie. if (answer == 'y') returns true;

Here is some info on String Literals in C++: http://msdn.microsoft.com/en-us/library/69ze775t%28VS.80%29.aspx

  • 1
    You mean that double quotation marks are not interchangable in c++? – Morlock Feb 15 '10 at 2:10
  • 5
    No, double quotes are char[] (a bunch of characters), single quotes is a single char. – Chris Jester-Young Feb 15 '10 at 2:11
  • just posted a link for you to msdn library. – Craig Feb 15 '10 at 2:12

"y" is a string/array/pointer. 'y' is a char/integral type

You must remember to use single quotes for char constants. So use

if (answer == 'y') return true;

Rather than

if (answer == "y") return true;

I tested this and it works

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