Python running as Windows Service: OSError: [WinError 6] The handle is invalid

Add stdin=subprocess.PIPE like:

with subprocess.Popen( args=[self.exec_path], stdout=subprocess.PIPE, stdin=subprocess.PIPE, stderr=subprocess.STDOUT) as proc:

Line 1117 in subprocess.py is:

p2cread = _winapi.GetStdHandle(_winapi.STD_INPUT_HANDLE)

which made me suspect that service processes do not have a STDIN associated with them (TBC)

This troublesome code can be avoided by supplying a file or null device as the stdin argument to popen.

In Python 3.x, you can simply pass stdin=subprocess.DEVNULL. E.g.

subprocess.Popen( args=[self.exec_path], stdout=subprocess.PIPE, stderr=subprocess.STDOUT, stdin=subprocess.DEVNULL)

In Python 2.x, you need to get a filehandler to null, then pass that to popen:

devnull = open(os.devnull, 'wb')
subprocess.Popen( args=[self.exec_path], stdout=subprocess.PIPE, stderr=subprocess.STDOUT, stdin=devnull)

Tags:

Python

Windows

Subprocess

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