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Is there a way to interrupt (Ctrl+C) a Python script based on a loop that is embedded in a Cython extension :

I have the following python script :

def main():

    # Intantiate simulator
    sim = PySimulator()
    sim.Run()

if __name__ == "__main__":
    # Try to deal with Ctrl+C to abort the running simulation in terminal
    # (Doesn't work...)
    try:
        sys.exit(main())
    except (KeyboardInterrupt, SystemExit):
        print '\n! Received keyboard interrupt, quitting threads.\n'

This runs a loop that is part of a C++ Cython extension. Then, while pressing Ctrl+C, the KeyboardInterrupt is thrown but ignored, and the program keeps going until the end of the simulation.

The work around I found, is to handle the exception from within the extension by catching the SIGINT signal :

#include <execinfo.h>
#include <signal.h>

static void handler(int sig)
{
  // Catch exceptions
  switch(sig)
  {
    case SIGABRT:
      fputs("Caught SIGABRT: usually caused by an abort() or assert()\n", stderr);
      break;
    case SIGFPE:
      fputs("Caught SIGFPE: arithmetic exception, such as divide by zero\n",
            stderr);
      break;
    case SIGILL:
      fputs("Caught SIGILL: illegal instruction\n", stderr);
      break;
    case SIGINT:
      fputs("Caught SIGINT: interactive attention signal, probably a ctrl+c\n",
            stderr);
      break;
    case SIGSEGV:
      fputs("Caught SIGSEGV: segfault\n", stderr);
      break;
    case SIGTERM:
    default:
      fputs("Caught SIGTERM: a termination request was sent to the program\n",
            stderr);
      break;
  }
  exit(sig);

}

Then :

signal(SIGABRT, handler);
signal(SIGFPE,  handler);
signal(SIGILL,  handler);
signal(SIGINT,  handler);
signal(SIGSEGV, handler);
signal(SIGTERM, handler);

Can't I make this work from Python, or at least from Cython instead ? As I am about to port my extension under Windows/MinGW, I would appreciate to have something less Linux specific...

Thanks

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2 Answers 2

up vote 7 down vote accepted

You have to periodically check for pending signals, for example, on every Nth iteration of the simulation loop:

from cpython.exc cimport PyErr_CheckSignals

cdef Run(self):
    while True:
        # do some work
        PyErr_CheckSignals()

PyErr_CheckSignals will run signal handlers installed with signal module (this includes raising KeyboardInterrupt if necessary).

PyErr_CheckSignals is pretty fast, it's OK to call it often. Note that it should be called from the main thread, because Python runs signal handlers in the main thread. Calling it from worker threads has no effect.

Explanation

Since signals are delivered asynchronously at unpredictable times, it is problematic to run any meaningful code directly from the signal handler. Therefore, Python queues incoming signals. The queue is processed later as part of the interpreter loop.

If your code is fully compiled, interpreter loop is never executed and Python has no chance to check and run queued signal handlers.

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+1 for the explanation. Does PyErr_CheckSignals() handle Ctrl-C on Windows? I've opted out for the implicit signal checking by while sim.running: time.sleep(1) loop in the main thread that works as long as Cython code in another thread releases GIL periodically. –  J.F. Sebastian May 27 '13 at 22:25
    
Yes, it works on Windows as expected. –  Nikita Nemkin May 28 '13 at 4:05
    
I've used "opt out" wrong. I've meant the opposite: s/opt out/choose to do/ above. –  J.F. Sebastian May 28 '13 at 9:36
    
Thanks. I give it a try. And still want to benchmark it as performances are really crucial in my simulations (which can take hours, or even days). But this seems to be the kind of solution a was dreaming of... –  Gauthier Boaglio May 28 '13 at 10:58
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Release GIL when Cython runs parts that do not interface with Python, run loop in the main thread (sleep or check the simulation status), and call sim.Stop() (that can set some flag that your simulation can check periodically) in the except close.

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Ok, that sounds meaningful (even if I was secretly hopping there would be an effortless solution ;-). Thanks for the advice. –  Gauthier Boaglio May 27 '13 at 11:57
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