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I use Django develpment server to start a daemon, it performs all the commands from the views.py, but web page hangs. Daemon is starting normally but web page hanging needs to be fixed. I work under Red Hat Enterprise Linux 6.3.

To make sure that it's not my or my daemon mistake I performed the following test:

1) I created new Django project "djtesting", where created one views.py file with the following code (it starts httpd daemon):

from django.http import HttpResponse
import subprocess

def hello(request):
    res = subprocess.call("/usr/sbin/httpd")
    return HttpResponse("Testing.")

2) Added this function to urls.py:

from django.conf.urls.defaults import patterns, include, url
from djtesting.views import hello

urlpatterns = patterns('',
    ('^hello/$', hello),
    )

3) Then I started web server with "python manage.py runserver 192.168.1.226:8000" and open web page with "http://192.168.1.226:8000/hello/" in browser. It shows "Testing" message and then hangs (starts loading and hangs on this) although daemon started normally. But if to stop the daemon with "/etc/init.d/httpd stop" the web page stops loading. It seems that the server is waiting until the daemon finish working, but I need just to start it without waiting until it ends.

I've tried another ways to run a daemon (one line per one attempt of course) but with the same poor result:

thread.start_new_thread(os.system, ('/usr/sbin/httpd',))
process = subprocess.Popen("/usr/sbin/httpd", stdout=subprocess.PIPE, stdin=subprocess.PIPE, shell=True)
res = subprocess.call(["/usr/sbin/httpd", "&"])
res = subprocess.Popen("/usr/sbin/httpd")
res = os.system("/usr/sbin/httpd &")
res = os.spawnl(os.P_NOWAITO, '/usr/sbin/httpd', '&')

I've found the similar question but I cannot use start-stop-daemon since I work under RHEL6.3: Why hangs the web page after it started a daemon on the underlying server?

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1 Answer 1

subprocess.call waits for a return value, so I'm rather surprised you're able to get a return value at all. Try using subprocess.Popen instead, as that spawns the process and then returns control back to you rather than waiting for the end.

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I have tried subprocess.Popen (see above) and the same poor result. –  Sadie Oct 17 '12 at 8:30

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