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It's probably a long-shot that anyone can answer this without seeing all the source code and libraries, etc., but I'll try.

I have a program X written in C++ using boost-1.41. If X outputs with std::cout, then running X from another program using fp=popen("X", "r") allows X's output to be seen via fgets(buff, 1024, fp).

Now if I change X to use printf() instead of std::cout, the output of X is no longer seen. However, running X from bash produces the output as expected.

What could possibly explain this difference?! I suspect boost is involved here, but I don't know much about boost.

Note: I am happy sticking to std::cout and my problem is solved. But I'm trying to understand what the problem was with printf().

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1 Answer 1

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The reason is that you probably used std::endl with std::cout. That, in addition to writing a newline character, also flushes the output buffer.

To do the same with printf you can just add fflush(stdout); after the call.

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Nicely done; that was it. I had no idea std::endl flushed buffers. –  Fixee Oct 26 '11 at 21:38
    
They both also periodically flush themselves, but at largely unpredictable intervals. –  Mooing Duck Oct 26 '11 at 21:39
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@Fixee: Yes, that's why std::cout << std::endl is MUCH slower than std::cout << '\n' –  Mooing Duck Oct 26 '11 at 21:39
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That's what std::endl is for. It's usually better just to use '\n' or "\n" and let the system decided when to flush its buffers. –  Keith Thompson Oct 26 '11 at 21:52
    
Thanks; here the flush was critical because (apparently) writing to a pipe auto-flushes much less often than writing to a term device, which had me perplexed. –  Fixee Oct 26 '11 at 22:06

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