22
#include <stdio.h>
#include <string>
main()
{
int br_el[6],i;
std::string qr_naziv[6];

    qr_naziv[0]="Bath tub";

    qr_naziv[1]="Sink";

    qr_naziv[2]="Washing machine";

    qr_naziv[3]="Toilet";

    qr_naziv[4]="Kitchen sink";

    qr_naziv[5]="Dish washer";


for(i=0;i<6;i++)
    {

        printf("Input the number for %s =",qr_naziv[i]);\\here lies the problem

scanf("%d",&br_el[i]);
}

This program is much longer, so I shortened it.. The thing is, I will enter numbers for array br_el[6], and I want it to show me for what object I am entering the number! So when I try to compile it gives me the error:"[Error] cannot pass objects of non-trivially-copyable type 'std::string {aka class std::basic_string}' through '...'" I tried to declare string qr_naziv[6]; but the string didn't even bold so it didn't work, so I googled and found out another way (std::string qr_naziv[6];).

38

Well, C functions are not acquainted with C++ structures. You should do the following:

...
for(i = 0; i < 6; i++) {
    printf("Input the number for %s =", qr_naziv[i].c_str());
    scanf("%d", &br_el[i]);
}
...

Notice the call to the method c_str() on the each std::string qr_naziv[i], which returns a const char * to a null-terminated character array with data equivalent to those stored in the string -- a C-like string.

Edit: And, of course, since you're working with C++, the most appropriate to do is to use the stream operators insertion << and extraction >>, as duly noted by @MatsPetersson. In your case, you could do the following modification:

# include <iostream>
...
for(i = 0; i < 6; i++) {
    std::cout << "Input the number for " << qr_naziv[i] << " =";
    std::cin >> br_el[i];
}
...
  • 2
    Or, use cin >> and cout << style C++ constructs, instead of C style code. – Mats Petersson May 3 '14 at 22:45
  • 1
    I will consider your advice! :) – Jovica96 May 4 '14 at 13:27
  • Can i solve this problem with overloading of an type-casting operator? – SuB Jan 6 '18 at 7:51
  • @SuB Calling c_str() may be held as coercing the std::string qr_naziv[i] into a C string. However, there is no explicit syntatic sugar for that in C++, as C strings are typed char *, and a char * is not a constructor that would implement an overload with a std::string as argument. – Rubens Jan 6 '18 at 12:19

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