6

I have g++ version 4.8.4 compiler with Xubuntu 14.04. In the midst of my OpenCV code (written in Eclipse CDT), I wrote the following three lines consecutively:

/* Some codes here*/
cerr << "No match found. # of false positives: " << falsePositives << endl;
cout << "Press a key to continue..." << endl;
waitKey(0);

and here is the result:

Press a key to continue...
No match found. # of false positives: 1
/*there is a blank line*/

Why the order of those two lines changed at the execution time? There is no parallel code at all in the previous lines but they seems to work like parallel (at the same time).

I know that cerr is not buffered whereas cout is buffered (which means, afaik, cerr is slower compared to cout); however, no matter what, shouldn't the order of execution be changed? And where does that blank line comes from? (probably from one of those endls but which one?)

Can someone explain what is going on those two lines?

Thank you so much.

EDIT: I don't use ubuntu, I use Xubuntu 14.04. Sorry for that mistake, my mind was too messy but I think it does not effect the result. I use Eclipse's provided console to display them. I tried to append std:: prefix to all cout, cerr, endl. The result is same.

The interesting point is that when I just wrote a new file including:

#include <iostream>
#include <cstdlib>
int main()
{       
    std::cerr << "No match found. # of false positives: " << 2 << std::endl;
    std::cout << "Press a key to continue..." << std::endl;

    return 0;
}

I got the expected output(first cerr and then cout) by using xfce4-terminal and g++ compiler.

The problem occurs when using Eclipse CDT. I also want to remind all of you that I work on OpenCV.

Chris Dodd's 4th suggestion:

"your code is actually something other than what you've posted above, and the difference, while seemingly unimportant, is actually crucial."

Of course my code does contain other than what I typed but there are lots of, I mean lots of computation etc. before those lines. However, there might be relating parts before which I could not realise. Also, I didn't redirected stdout and/or stderr to different devices/files/pipes before those lines at all.

EDIT 2: When I execute the program in the Debug mode of Eclipse CDT, following assembly lines,

After cerr line the followings are executed (as well as other assembly codes of course):

callq 0x403500 <_ZStlsISt11char_traitsIcEERSt13basic_ostreamIcT_ES5_PKc@plt>
callq 0x403470 <_ZNSolsEi@plt>
callq 0x403770 <_ZNSolsEPFRSoS_E@plt>

After cout line the followings are executed (as well as other assembly codes of course):

callq 0x403500 <_ZStlsISt11char_traitsIcEERSt13basic_ostreamIcT_ES5_PKc@plt>
callq 0x403770 <_ZNSolsEPFRSoS_E@plt>
callq 0x403670 <_ZN2cv7waitKeyEi@plt>

and they all give the same error message:

No source available for "std::basic_ostream >& std::operator<< >(std::basic_ostream >&, char const*)@plt at 0x403500"

and the process continues with other lines of assembly code without termination.

PS: When I commented out everthing but those two lines, it works as expected. Thus, my conclusion is that, there may be relevant code part before those lines but I couldn't figure them out.

  • 3
    They are separate streams, so that doesn't surprise me. If the order is important, you could flush to force the output before doing the next message. – Kenny Ostrom Jun 17 '16 at 15:02
  • 2
    Maybe the compiler reordered the code. Can you check the assembly to see if that is the case?. Also I cannot reproduce – NathanOliver Jun 17 '16 at 15:03
  • 5
    @NathanOliver It would be incredibly wrong if it did that. – Barmar Jun 17 '16 at 15:07
  • 1
    @Barmar I agree but since the OP is flushing both streams I can't really see what else would cause this. – NathanOliver Jun 17 '16 at 15:09
  • 3
    One possibility is that your program is completing both writes to the streams before control passes back to the program running the terminal. The terminal program just sees that data is available on both streams at the same time -- it can't tell which one happened "first" -- and, the terminal program happens to process standard output before standard error. – Steven Jun 17 '16 at 15:18
6

std::cerr and std::cout are different streams and they are not synchronized. So you really can't assume anything about how output to both gets shown. In this case, the output happens to be shown before the error.

You can rely on the order within either stream.

Additionally, std::cout is buffered and std::cerr is not, and that often causes this kind of problem, but because you are using std::endl (which flushes the stream) this doesn't really apply in your case.

  • The OP is flushing the streams (std::endl forces a flush). – Sneftel Jun 17 '16 at 15:59
2

The order of those two lines was not changed. However, whatever code produced the output you saw failed to preserve the order in which the output was sent to the two streams. It's possible that it just waited and then read both streams to produce the final output. It's hard to be sure without knowing what your environment looks like.

1

Well, std::endl flushes the stream to the underlying device, which mean that the output cannot legally be what you describe -- the first endl is sequenced before the output to cout, so the cerr stream must be flushed and the output appear on the terminal before the second line is executed.

Which means there are a number of possibilities

  • your computer is broken or compiler is buggy (unlikely)
  • you've defined endl to be something other than std::endl, and it doesn't flush (possible if you're trying to be obfuscated)
  • you've redirected stdout and/or stderr to different devices/files/pipes and are later combining them, and that later combination step is reordering things.
  • your code is actually something other than what you've posted above, and the difference, while seemingly unimportant, is actually crucial.

So if you want a real answer to this question, you need to post and MVCE demonstrating what you are actually doing.

  • Hmm. Certainly the given output to the cerr stream should be flushed out before the output to the cout stream, but I don't see why that means the output "cannot legally be" as described. They are different streams; what the environment does with them is unknown. It would be perfect normal for the two streams to go to entirely different files. If two different streams are being multiplexed together into terminal output, and both have text waiting when the terminal checks—it can do whatever order it wants, no? – Nick Matteo Jun 17 '16 at 19:17
  • @Kundor: part of the problem is the OP doesn't say what he's doing with the output to "see" that result. But while they are different streams, if they are connected to the same underlying device (such as a terminal), the flush guarentees that that device will see the writes in order. Now that device might be something weird that scrambles the output is some way, but a normal Ubuntu terminal will not. – Chris Dodd Jun 17 '16 at 19:21
  • 1
    AFAIK a flush doesn't force a context switch to any listening processes, so it's perfectly permissible that both flushes will occur before task switching, so that the terminal will see both writes at once. It has no way of knowing which write came first (they are in order within each stream, but don't have timestamps: it's just a stream of text.) – Nick Matteo Jun 17 '16 at 19:26
  • @Kundor: A flush forces a context switch to the kernel, which handles the write to the device. If the device isn'y ready to handle the data, it will block the writing thread until it is ready. A device is not a process, so it isn't 'listening' -- it just is. – Chris Dodd Jun 17 '16 at 20:55
1

Eclipse CDT is inserting itself into the cerr and cout streams during the creation of your process. It may echo the cerr stream to one of its windows and then write to the intended console. A tee of sorts.

Since it is polling these streams, it is not be possible to synchronize them. This could explain the behavior.

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