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say I have:

int lol;
cout << "enter a number(int): ";
cin >> lol
cout << lol;

If I type 5 then it'll cout 5. If I type fd it couts some numbers. How can I specify the value, like say I only want it an int?

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1 Answer 1

up vote 7 down vote accepted

If you type in fd it will output some numbers because those numbers are what lol happens to have in them before it gets assigned to. The cin >> lol doesn't write to lol because it has no acceptable input to put in it, so it just leaves it alone and the value is whatever it was before the call. Then you output it (which is UB).

If you want to make sure that the user entered something acceptable, you can wrap the >> in an if:

if (!(cin >> lol)) {
    cout << "You entered some stupid input" << endl;
}

Also you might want to assign to lol before reading it in so that if the read fails, it still has some acceptable value (and is not UB to use):

int lol = -1; // -1 for example

If, for example, you want to loop until the user gives you some valid input, you can do

int lol = 0;

cout << "enter a number(int): ";

while (!(cin >> lol)) {
    cout << "You entered invalid input." << endl << "enter a number(int): ";
    cin.clear();
    cin.ignore(numeric_limits<streamsize>::max(), '\n');
}

// the above will loop until the user entered an integer
// and when this point is reached, lol will be the input number
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i dunno why but it still couts random number when i input something thats not a number, why is this? –  Bartek Sowka Feb 4 '12 at 17:03
1  
@BartekSowka because of what I said. lol has some uninitialised value and it does not get changed if the user inputs something that isn't a number. The if will tell you if lol was changed. You have to not output lol if the user inputted something that is not a number. –  Seth Carnegie Feb 4 '12 at 17:06
    
@BartekSowka see the update in my answer above for an example. –  Seth Carnegie Feb 4 '12 at 17:07
    
I don't want to sound disrespectful and sorry if I say something that will offend you (I'm not that eloquent you see). I can't really understand you. I did find one solution that I don't know what to do at the start of the code, I could set a string and then check if the input has letters, if it does then it will print the string, if it doesn't then it'll print the actual int. –  Bartek Sowka Feb 4 '12 at 17:10
    
@BartekSowka did you try my example? –  Seth Carnegie Feb 4 '12 at 17:12

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