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I have a sort of calculator in C++ that should accept arguments when executed. However, when I enter 7 as an argument, it might come out to be 10354 when put into a variable. Here is my code:

#include "stdafx.h"
#include <iostream>

int main(int argc, int argv[])
{
    using namespace std;
    int a;
    int b;
    if(argc==3){
        a=argv[1];
        b=argv[2];
    }
    else{
        cout << "Please enter a number:";
        cin >> a;
        cout << "Please enter another number:";
        cin >> b;
    }
    cout << "Addition:" << a+b << endl;
    cout << "Subtaction:" << a-b << endl;
    cout << "Multiplycation:" << a*b << endl;
    cout << "Division:" << static_cast<long double>(a)/b << endl;
    system("pause");
    return 0;
}
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Always compile your code with maximum warnings enabled. -Wall when using gcc. I suspect the compiler would have stopped you from making this mistake with a warning about converting a pointer to an integer. –  deft_code Feb 10 '11 at 0:18
    
@deft_code? Where the conversion from pointer to integer? main simply has the wrong type signature. –  Ben Voigt Feb 10 '11 at 0:34
    
FYI, most mathematicians require checking the denominator for zero before division. I heard it was illegal. I believe the programming term is "Undefined behavior". The program will generate a signal or exception. Worlds may fall apart. Who knows? –  Thomas Matthews Feb 10 '11 at 0:38
    
@Thomas: Depending of the floating-point exception mode, the program may just print 1#IND or the like. –  Ben Voigt Feb 10 '11 at 0:53

3 Answers 3

up vote 12 down vote accepted

Wherever did you get int argv[]? The second argument to main is char* argv[].

You can convert these command line arguments from string to integer using atoi or strtod.

For example:

    a=atoi(argv[1]);
    b=atoi(argv[2]);

But you can't just change the parameter type, because the operating system is going to give you your command-line arguments in string form whether you like it or not.

NOTE: You must #include <stdlib.h> (or #include <cstdlib> and using std::atoi;) to use the atoi function.


If you want error-checking, use strtol instead of atoi. Using it is almost as easy, and it also gives you a pointer to the location in the string where parsing terminated. If that points to the terminating NUL, parsing was successful. And of course it is good that you verify argc to make sure the user provided enough parameters, and avoid trying to read missing parameters from argv.

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Another method for converting from string to integer is to use std::istringstream. –  Thomas Matthews Feb 10 '11 at 0:35
    
@Thomas: If you need to handle thousands separators and currency symbols and stuff, yes. Otherwise it's just 5 times as much code and 20 times slower. –  Ben Voigt Feb 10 '11 at 0:37
    
Reason for downvote? –  Ben Voigt Feb 10 '11 at 0:52
    
Thanks. I knew about the arguments, but not the function atoi(). –  Rob Feb 10 '11 at 1:07

The function signature is int main(int argc, char *argv[]). argv is an array of string pointers.

If the argument is 7, it will be in the form of a string ("7"). Use atoi() to convert it to the number 7.

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Thanks. I didn't know about that function. When I used static_cast and the arguments int argc, and char *argv[], it would result in an error. –  Rob Feb 10 '11 at 1:01
    
@Rob: If you were casting char * to int, be glad your compiler wouldn't allow it. If you could compile it, you'd have a program with a serious bug. A string is an array of characters. The value of character '7' is not 7. If you want to perform math with 7, you have to convert the string. –  Jonathan Wood Feb 10 '11 at 1:34

Second argument in the main should either either be char* argv[] or char** argv. Then you have to have convert them to int.

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