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I am at the computer lab and none of the tutors can figure out why my getline is not working correctly. It is not storing the information correctly (only stores 1 or 2 letters). Does anyone know why this is so?

void addMovie(Inventory movie[], int &count)
{
    string s;
    int i;

    cout << "Please enter the SKU " << endl;
    cin >> i;
    movie[count].sku = i;

    cout << "Please enter the name of the movie you wish to add " << endl;

    cin.ignore('\n');
    getline(cin, s, '\n');
    movie[count].title = s;

    count++;
}
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2  
As a note, you should probably be using some kind of standard container than a C-style array. You don't seem to be doing any bounds checking here. –  tadman Sep 19 '12 at 0:21
    
You don't have to put in the '\n' on the getline, either. It's the default delimeter. –  chris Sep 19 '12 at 0:34

1 Answer 1

up vote 8 down vote accepted

std::istream::ignore (i.e. cin.ignore())'s first argument is the number of characters to discard. The value of '\n' has an ASCII code of 10, so that '\n' is being implicitly converted to an integer (most likely 10, but it could differ if a different encoding is used - EBCDIC uses 21), and that's how many characters are being ignored, leaving a few left over.

What you actually want is to discard the maximum possible number until you find a newline:

#include <limits> //for numeric_limtis
std::cin.ignore(std::numeric_limits<std::streamsize>::max(), '\n');
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Shouldn't the compiler have warned about this implicit conversion? –  muntoo Sep 19 '12 at 2:30
    
@muntoo, No, it's a common conversion well-defined by the standard. C++ doesn't differentiate int and char as separate types requiring user assurance to convert, as something like Java does, so both can be used interchangeably. You can see this on functions such as tolower, which takes and returns an int. That one comes from C, though, as I believe. The whole thing between ints and chars might come from C, but I can't remember. There's probably some good discussion on it somewhere on SO. –  chris Sep 19 '12 at 2:34
    
@muntoo, Just to point out an example, this is an excellent reason for std::string not having a constructor taking a single char. If you did std::string str(10); expecting a string with a length of 10, it would implicitly convert to a char and use that instead. It also works the other way around. Another thing I just remembered is that C's character literals had the type int, not char. I forget if C had char at all back then, but even having it, something like tolower would have to convert the character literal to a char first. –  chris Sep 19 '12 at 2:43
    
@muntoo, And to clear up something in the first one, they are treated as different types in that void f(char); and void f(int); are unambiguous, but with just one, it doesn't matter which you pass in. –  chris Sep 19 '12 at 2:47

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