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This example reads lines with an integer, an operator, and another integer. For example,

25 * 3

4 / 2

// sstream-line-input.cpp - Example of input string stream.
//          This accepts only lines with an int, a char, and an int.
// Fred Swartz 11 Aug 2003

#include <iostream>
#include <sstream>
#include <string>
using namespace std;
//================================================================ main
int main() {
    string s;                 // Where to store each line.
    int    a, b;              // Somewhere to put the ints.
    char   op;                // Where to save the char (an operator)
    istringstream instream;   // Declare an input string stream

    while (getline(cin, s)) { // Reads line into s
        instream.clear();     // Reset from possible previous errors.
        instream.str(s);      // Use s as source of input.
        if (instream >> a >> op >> b) {
            instream >> ws;        // Skip white space, if any.
            if (instream.eof()) {  // true if we're at end of string.
                cout << "OK." << endl;
            } else {
                cout << "BAD. Too much on the line." << endl;
            }
        } else {
            cout << "BAD: Didn't find the three items." << endl;
        }
    }
    return 0;
}

operator>>Return the object itself (*this).

How does the test if (instream >> a >> op >> b) work?

I think the test always true, because instream!=NULL.

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2 Answers 2

up vote 7 down vote accepted

The basic_ios class (which is a base of both istream and ostream) has a conversion operator to void*, which can be implicitly converted to bool. That's how it works.

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3  
I think it is the other base class, confusingly named basic_ios, that has this operator. It returns non-zero (true) based on evaluating !fail() for the stream. –  Bo Persson Jun 28 '11 at 6:57
    
@Bo: Atleast on MSVC it's ios_base, from which basic_ios inherits. Lemme check the standard. –  Xeo Jun 28 '11 at 7:36
1  
I believe this can be thought of as an implementation of the Safe bool idiom. Note that in C++0x, there is an explicit overload for operator bool() instead (see also this question). –  Björn Pollex Jun 28 '11 at 7:41
    
@Bo: You were right, the standard defines basic_ios to provide the conversion operator. Editing. –  Xeo Jun 28 '11 at 7:47

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