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Why does my cout output not appear immediately?

I have a very heavy method (it checks if a number is a prime - Euler 3), which blocks cout.
How is this possible? This is my code:

int main(int argc, char * argv[]) {
    cout << "-----------------------------------------------------------" << endl;
    cout << "isPrime(3): " << ((isPrime(3)) ? "true" : "false") << endl;
    cout << "isPrime(10): " << (isPrime(10) ? "true" : "false") << endl;
    cout << "BLAH";
    cout << "BLAH";
    cout << "BLAH";
    cout << "BLAH";
    cout << "BLAH";
    cout << "BLAH";
    cout << "isPrime(600851475143): " << (isPrime(600851475143.0) ? "true" : "false") << endl; // This one takes very long to complete
    cout << "-----------------------------------------------------------";
}

Like this, it outputs:

[Session started at 2013-01-19 13:50:12 +0100.]
-----------------------------------------------------------
isPrime(3): false
isPrime(10): false

and then stops (for a few minutes). (isPrime() is broken, I know!) If I comment the line with isPrime(600851475143) out, it outpus everything except the output of the commented line of course in less than a second.

How is it possible that a very heavy method call blocks output that should already have been written to cout?

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marked as duplicate by Raymond Chen, Oliver Charlesworth, Bo Persson, bmargulies, t0mm13b Jan 19 '13 at 23:05

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

    
There may be some problem in your function isPrime. e.g it could be stuck in a loop. –  sgarizvi Jan 19 '13 at 13:02
    
Nope, the number is just very big (and it's logic is broken, so it runs extra long). I waited a few times for it to complete. @sgar91 –  11684 Jan 19 '13 at 13:04
1  
@RaymondChen How should I have found that? –  11684 Jan 19 '13 at 13:08
    
This is why it is important to set a good title for your question. So that others can find answers more easily. That other person did a bad job, and everybody suffers. –  Raymond Chen Jan 19 '13 at 13:31

3 Answers 3

up vote 5 down vote accepted

cout writes to the standard output, which is typically line-buffered. i.e. the buffer is only flushed to the console when it encounters a newline character or an endl, or when you explicitly call cout.flush().

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Thank you! Will accept your answer in 12 minutes! –  11684 Jan 19 '13 at 13:03

The stream buffers the output, and only writes it to the console when it sees a newline character.

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If you use cout.flush(); or cout << endl;, the output that is pending up until the point of the flush will be printed.

This is due to the fact that cout tries to be efficient in it's usage of I/O calls. Since all of the code runs in one thread, there is no way to add a timeout or something, so if you have a call that takes several minutes, the output will not be processed.

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