Execute a file with arguments in Python shell
Question:
I would like to run a command in Python Shell to execute a file with an argument.
For example: execfile("abc.py") but how to add 2 arguments?
Answers:
You can’t pass command line arguments with execfile(). Look at subprocess instead.
execfile runs a Python file, but by loading it, not as a script. You can only pass in variable bindings, not arguments.
If you want to run a program from within Python, use subprocess.call. E.g.
import subprocess
subprocess.call(['./abc.py', arg1, arg2])
You’re confusing loading a module into the current interpreter process and calling a Python script externally.
The former can be done by importing the file you’re interested in. execfile is similar to importing but it simply evaluates the file rather than creates a module out of it. Similar to “sourcing” in a shell script.
The latter can be done using the subprocess module. You spawn off another instance of the interpreter and pass whatever parameters you want to that. This is similar to shelling out in a shell script using backticks.
import sys
import subprocess
subprocess.call([sys.executable, 'abc.py', 'argument1', 'argument2'])
try this:
import sys
sys.argv = ['arg1', 'arg2']
execfile('abc.py')
Note that when abc.py finishes, control will be returned to the calling program. Note too that abc.py can call quit() if indeed finished.
Actually, wouldn’t we want to do this?
import sys
sys.argv = ['abc.py','arg1', 'arg2']
execfile('abc.py')
For more interesting scenarios, you could also look at the runpy module. Since python 2.7, it has the run_path function. E.g:
import runpy
import sys
# argv[0] will be replaced by runpy
# You could also skip this if you get sys.argv populated
# via other means
sys.argv = ['', 'arg1' 'arg2']
runpy.run_path('./abc.py', run_name='__main__')
Besides subprocess.call, you can also use subprocess.Popen. Like the following
subprocess.Popen(['./script', arg1, arg2])
If you set PYTHONINSPECT in the python file you want to execute
[repl.py]
import os
import sys
from time import time
os.environ['PYTHONINSPECT'] = 'True'
t=time()
argv=sys.argv[1:len(sys.argv)]
there is no need to use execfile, and you can directly run the file with arguments as usual in the shell:
python repl.py one two 3
>>> t
1513989378.880822
>>> argv
['one', 'two', '3']
If you want to run the scripts in parallel and give them different arguments you can do like below.
import os
os.system("python script.py arg1 arg2 & python script.py arg11 arg22")
This works:
subprocess.call("python abc.py arg1 arg2", shell=True)
runfile('abc.py', ['arg1', 'arg2'])
This works for me :
import subprocess
subprocess.call(['python.exe', './abc.py', arg1, arg2])
I would like to run a command in Python Shell to execute a file with an argument.
For example: execfile("abc.py") but how to add 2 arguments?
You can’t pass command line arguments with execfile(). Look at subprocess instead.
execfile runs a Python file, but by loading it, not as a script. You can only pass in variable bindings, not arguments.
If you want to run a program from within Python, use subprocess.call. E.g.
import subprocess
subprocess.call(['./abc.py', arg1, arg2])
You’re confusing loading a module into the current interpreter process and calling a Python script externally.
The former can be done by importing the file you’re interested in. execfile is similar to importing but it simply evaluates the file rather than creates a module out of it. Similar to “sourcing” in a shell script.
The latter can be done using the subprocess module. You spawn off another instance of the interpreter and pass whatever parameters you want to that. This is similar to shelling out in a shell script using backticks.
import sys
import subprocess
subprocess.call([sys.executable, 'abc.py', 'argument1', 'argument2'])
try this:
import sys
sys.argv = ['arg1', 'arg2']
execfile('abc.py')
Note that when abc.py finishes, control will be returned to the calling program. Note too that abc.py can call quit() if indeed finished.
Actually, wouldn’t we want to do this?
import sys
sys.argv = ['abc.py','arg1', 'arg2']
execfile('abc.py')
For more interesting scenarios, you could also look at the runpy module. Since python 2.7, it has the run_path function. E.g:
import runpy
import sys
# argv[0] will be replaced by runpy
# You could also skip this if you get sys.argv populated
# via other means
sys.argv = ['', 'arg1' 'arg2']
runpy.run_path('./abc.py', run_name='__main__')
Besides subprocess.call, you can also use subprocess.Popen. Like the following
subprocess.Popen(['./script', arg1, arg2])
If you set PYTHONINSPECT in the python file you want to execute
[repl.py]
import os
import sys
from time import time
os.environ['PYTHONINSPECT'] = 'True'
t=time()
argv=sys.argv[1:len(sys.argv)]
there is no need to use execfile, and you can directly run the file with arguments as usual in the shell:
python repl.py one two 3
>>> t
1513989378.880822
>>> argv
['one', 'two', '3']
If you want to run the scripts in parallel and give them different arguments you can do like below.
import os
os.system("python script.py arg1 arg2 & python script.py arg11 arg22")
This works:
subprocess.call("python abc.py arg1 arg2", shell=True)
runfile('abc.py', ['arg1', 'arg2'])
This works for me :
import subprocess
subprocess.call(['python.exe', './abc.py', arg1, arg2])