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Considering istream_iterator's lazy evaluation I was wondering if I can rely on the initialized, but never dereferenced or incremented, iterator for a condition.

As an example:

#include <iostream>
#include <fstream>
#include <iterator>

using namespace std;

int main(void)
{
    ifstream file("some_directory");
    istream_iterator<int> beg(file), eof;

    if (beg != eof) {

        //do something
    }
    else {

        cerr << "No Input!" << endl;
    }
}

Given this code sample, my question is: Is it possible that (beg != eof) is evaluated true even if file is empty?

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No, there is not. –  Elazar Feb 24 '14 at 19:27

1 Answer 1

up vote 0 down vote accepted

Given this code sample, my question is: Is it possible that (beg != eof) is evaluated true even if file is empty?

No. The standard says (24.6.1/1-2) says,

After [istream_iterator] is constructed, and every time ++ is used, the iterator reads and stores a value of T. If the iterator fails to read and store a value of T ... the iterator becomes equal to the end-of-stream iterator value. ... Two end-of-stream iterators are always equal. An end-of-stream iterator is not equal to a non-end-of-stream iterator. Two non-end-of-stream iterators are equal when they are constructed from the same stream.

In other words, this is not as lazy as you think:

istream_iterator<int> beg(file)

It'll read the first int. If the file is empty, it fails and becomes the end-of-stream iterator right away.

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