-3

So I have the following code:

void Start(int &year, string &mon, char &nyd)
{
    printf("%s", mon);
    int month= atoi(mon.c_str());
    printf("%i", month);
}

When the incoming parameter is "03" (the first printf shows 03), I got 0 for month.

However, if I add this line

mon = "03";

I got 3, which is correct, for month.

Why......????

EDIT: I figured it out. You guys were right. DON'T use scanf for string input.

  • 2
    You can't use std::string with %s. – chris Jan 29 '13 at 3:43
  • So how do you suggest me to modify the code? – user1447343 Jan 29 '13 at 3:45
  • With an addition of .data() or .c_str(). Even better, stick with something better than atoi, such as stoi, which actually has error checking and more relevant to that line, std::cout, which is type safe for printing. – chris Jan 29 '13 at 3:46
  • Nevertheless, the result of the atoi function, which is month, is not correct... – user1447343 Jan 29 '13 at 3:47
  • 1
    I simply do not know where to begin with you. – Lightness Races in Orbit Jan 29 '13 at 4:00
3

You can't print std::string with %s in printf function, try this:

void Start(int &year, const std::string &mon, char &nyd)
{
    std::cout << mon << std::endl;
    int month= atoi(mon.c_str());
    std::cout << month << std::endl;
}

Or

void Start(int &year, string &mon, char &nyd)
{
    printf("%s\n", mon.c_str());
    int month= atoi(mon.c_str());
    printf("%i\n", month);
}

But std::cout is preferred over C printf function.

Also don't use scanf with std::string, use std::cin instead of scanf, std::cout instead of printf.

  • Yeah, but the problem is not about the printf; it's about atoi. I still get 0 when mon = "03" after changing the printf function. – user1447343 Jan 29 '13 at 3:50
  • printf("Month: ");scanf("%s", month);Start(year, month, nyd); – user1447343 Jan 29 '13 at 3:54
  • 3
    @user1447343 Don't use scanf with std::string – Rapptz Jan 29 '13 at 3:55

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