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I'm new to C++. I decided to not watch the next tutorial and put my skills to use, by making a funny Mind Reader application. I'm pleased with myself, however, even though I've ironed out most bugs, I still have one concerning the exit function. I read the C++ documentation for it, and I'm not sure what I did wrong. I did exit(0);. I have a very weird error, which is:

no match for call to '(std::string {aka std::basic_string<char>}) (int)

I have searched online, however I am still unaware of what the problem is. My error is on line 59 (marked in the code):

#include <iostream>
#include <string>
#include <cstdlib>
using namespace std;

int main()
{
    //declaring variables to be used later
    string name;
    string country;
    int age;

    //header goes below
   cout << "#######################################";
           " @@@@@@@@@@@@ MIND READER @@@@@@@@@@@@"
           "#######################################\n\n";

    //asks if the user would like to continue and in not, terminates
    cout << "Would like you to have your mind read? Enter y for yes and n for no." << endl;
    cout << "If you do not choose to proceed, this program will terminate." << endl;
    string exitOrNot;
    //receives user's input
    cin >> exitOrNot;
    //deals with input if it is 'y'
    if (exitOrNot == "y"){
        cout << "Okay, first you will need to sync your mind with this program. You will have to answer the following questions to synchronise.\n\n";

        //asks questions
        cout << "Firstly, please enter your full name, with correct capitalisation:\n\n";
        cin >> name;

        cout << "Now please enter the country you are in at the moment:\n\n";
        cin >> country;

        cout << "This will be the final question; please provide your age:\n\n";
        cin >> age;

        //asks the user to start the sync
        cout << "There is enough information to start synchronisation. Enter p to start the sync...\n\n";
        string proceed;
        cin >> proceed;
        //checks to see if to proceed and does so
        if (proceed == "p"){
            //provides results of mind read
            cout << "Sync complete." << endl;
            cout << "Your mind has been synced and read.\n\n";
            cout << "However, due to too much interference, only limited data was aquired from your mind." << endl;
            cout << "Here is what was read from your mind:\n\n";

            //puts variables in sentence
            cout << "Your name is " << name << " and you are " << age << " years old. You are based in " << country << "." << endl << "\n\n";

            cout << "Thanks for using Mind Reader, have a nice day. Enter e to exit." << endl;
            //terminates the program the program
            string exit;
            cin >> exit;
            if (exit == "e"){
                exit(0);       // <------------- LINE 59
            }

        }

    }
    //terminates the program if the input is 'n'
    if (exitOrNot == "n"){
        exit(0);
    }

    return 0;
}

Thanks

share|improve this question
3  
Please post your code. – Barmar Oct 15 '13 at 19:04

The local variable exit shadows other identifiers from outer scopes with the same name.

To illustrate with a smaller example:

int main()
{
    int i;
    {
        int i;
        i = 0; // assign to the "nearest" i
        // the other i cannot be reached from this scope
    }
}

Since the only exit visible is an object of type std::string, the compiler sees exit(0) as a call to operator()(int) and throws a hissy fit when it doesn't find one among std::string members.

You can either qualify the name (std::exit(0);) or rename the variable. And since all of your code is in main you can simply say return 0; instead.

share|improve this answer
    
Hi. I'm sorry, but I'm really confused about your answer, as I'm literally 15 episodes in of thenewboston's C++ lessons. However, the guy below answered my question as well, and I've commented. Could you help me there? Thanks. – IrshadAM Oct 15 '13 at 19:32
    
@IrshadAM If you tell me what exactly is confusing about my answer I'll be happy to amend. – jrok Oct 15 '13 at 19:33

Try using return 0; or return EXIT_SUCCESS;. It's the exact same thing. Also, you can only input one word into a cin. Instead, use getline(cin, string name); If it still doesn't work, add a cin.ignore(); before your getline(cin, string name);, like this:

//stuff
string country;
cout << "Now please enter the country you are in at the moment:\n\n";
cin.ignore();
getline(cin, country);
//stuff
return 0;
share|improve this answer

The problem is arrising because you declared a standard keyword as the name of a local variable. Now as the local variable is of type sting it is not able to take it as its value.

share|improve this answer
    
Thanks, but can you tell which variable is the culprit here? – IrshadAM Oct 15 '13 at 19:30
    
@IrshadAM There's only one exit local variable in your code. – jrok Oct 15 '13 at 19:31
    
Well, thanks for all the help guys. The problem: Dear god, my stupidity. Well my program works now, I only have to fix the header. Thanks for all the help! I love stack exchange! Sorry for the spam btw! – IrshadAM Oct 15 '13 at 19:37
    
exit is not a keyword. Aside from that, this answer is correct. – Pete Becker Oct 16 '13 at 0:17

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