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Editorial Team
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Asked: 2026-06-16T05:39:52+00:00

#include <iostream> using namespace std; int main(int argc,char* argv[]){ if(argv[1] == ){ cout <<

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#include <iostream>

using namespace std;

int main(int argc,char* argv[]){
    if(argv[1] == ""){
        cout << "please put something" << endl;
    }else if(argv[1] == "string"){
        cout << "yeah string" << endl;
    }else if(argv[1] == "integer"){
        cout << "yeah integer" << endl;
    }
}

I don’t know what’s wrong: I try to check if argument supplied for argv[1] is empty so it will be false and application will exit, so please tell me what is wrong in my code.

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1 Answer

  1. Editorial Team

    Everybody is giving you a different answer. And in fact everybody is right.

    The signature of main, int main(int argc, char *argv[]) is inherited from C.
    In C strings are pointer to char. When you use operator== on them, you only compare pointer value.

    The C way to compare string content is to use strcmp.

    if (strcmp(argv[1], "integer") == 0){

    It is safer and easier for you to do it the C++ way.

    if (std::string(argv[1]) == "integer"){

    This line create a temporary std::string from argv[1]. you must include string for this to work.

    Finally check if argc == 2 in order to know if an argument was supplied.
    It is true that argv is null terminated by the standard 3.6.1 but it definitely
    make things clearer to check that argv is indeed equal to 2.

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