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I use !(cin >> input) to validate integer input, but it does not catch other datatypes such as floats. Instead it takes the first whole number. EG:

Please enter a number: 2.5.

My error message appears here, it is suppose to loop round but it takes first number instead.

Outputs "2"

How do I get it to ignore decimal input?

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8  
Post your code! –  billz Nov 13 '12 at 22:44
    
We need more information. Preferably a decent code sample, but at least the type of the variable named input. –  Iskar Jarak Nov 13 '12 at 22:47
    
@IskarJarak Obviously it's declared as an integer type, he's expecting this to fail when the input doesn't look like an integer. The reason it doesn't is that the beginning of a float looks like an integer. It reads the 2 and leaves .5 for the next input operation to read. –  Barmar Nov 13 '12 at 22:48
    
If you want to fully control the way your acquisition works the only way is to acquire the full row as a string and perform manually the parsing (with the help of e.g. istringstream if necessary). –  Matteo Italia Nov 13 '12 at 22:48
1  
It's reading the 2 and leaving the .5 in the buffer. That's how cin >> int_variable works. I'd recommend reading a string and using boost::lexical_cast to circumvent it. –  chris Nov 13 '12 at 22:49

3 Answers 3

The input stream considers anything starting with a sign followed by at least one decimal digit to be a valid integer input. If you want to fail on a decimal input including a decimal point, you need to do something different. One way to deal with this to read an integer and see if the character following the successful read of an integer is a decimal point:

if (!(std::cin >> value)
    || std::cin.peek() == std::char_traits<char>::to_int_type('.')) {
    deal_with_invalid_input(std::cin);
}

As Thomas Matthews correctly pointed out, the problem isn't really limited to floating point numbers but anything with a prefix of digits followed by a non-space (and not EOF: the above solution would actually miss a valid integer at the very end of a file, i.e., not followed by anything, not even a newline). To only read integers followed by a space or at the end of a file, something like this would be in order:

if (!(std:cin >> value)
    || (!std::isspace(std::cin.peek())
        && std::cin.peek() != std::char_traits<char>::eof())) {
    deal_with_invalid_input(std::cin);
}

There isn't really any way to return the already read characters. Since this isn't really nice to be used in many places, it may be reasonable to package this function into a suitable std::num_get<char> facet and imbue() the stream with a corresponding std::locale. This is a bit more advanced although the expression to deal with the code is actually simpler.

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FYI, the issue also appears with "23Monkeys", where the value 23 would be returned. –  Thomas Matthews Nov 13 '12 at 22:55
    
@ThomasMatthews: Right. I shall fix this in the response... –  Dietmar Kühl Nov 13 '12 at 22:56
    
I think the more common solution is to getline, put that into a stingstream, read that into an integer, and confirm the stringstream reached EOF. –  Mooing Duck Nov 15 '12 at 0:55
1  
@MooingDuck: surely not into an stringstream but an istringstream (not the extra i). That said: it depends on what you want. If a good line looks like this: 1 2 3 4 and a broken one like this 1 2 3.5 4 my approach works, yours doesn't. There is, of course a variation of your approach which would fix the issue: instead of reading a line, you'd read a word. I'm pretty convinced that my approach still works better of large inputs. –  Dietmar Kühl Nov 15 '12 at 1:13

You will need to read the full input before validating it. You could use cin.getline() or getline() to do that, then check to see if the input is what you want.

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You are trying to read different types of values using cin.

istream overload the >> operator to match the type of data you are expecting from input, and cin is a instance of the istream class.

When the expected type is an integer, it will consume character up to a string which can be converted to an integer, and leave the remaining characters in the stream for later parsing. The same happens with a float value, or with other simple types. See this reference page for more details on the operator and the types it supports out of the box. The bottom line is that if you want to have an integer value, but are expecting a float value from input, you must use the correct type of value you want to parse from input (here float), and do any needed conversion later on (here use trunc, floor, ceil or whichever rounding function that match your needs).

Here's a simple example:

#include <iostream>
#include <string>

using namespace std;

int main() {

    float f;
    string str;

    cout << "please enter a float :";
    cin >> f;

    cout << "value entered : " << f << endl;

    cout << "stream error : " 
         << (cin.fail() ? "yes" : "no") 
         << endl;

    cin >> str;

    cout << "remaining data : " << str << endl;

}

This very simple program demonstrate the use of the >> operator on istream, specifically with an expected float value. For the following input: "1.2345Z6789" (note the Z in the middle of the number), the program will parse the value "1.2345" and have "Z6789" remaining in the input buffer, available for a subsequent read.

If you replace the type of f from float to int, the program, on the same input, would read the value "1", and have ".2345Z6789" remaining in the input buffer.

Note: In your code, you are using the ! operator to test the state of the stream, which is equivalent to the fail method, which I used in my example.

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