How to get filename of the __main__ module in Python?
Question:
Suppose I have two modules:
a.py:
import b
print __name__, __file__
b.py:
print __name__, __file__
I run the “a.py” file. This prints:
b C:pathtocodeb.py
__main__ C:pathtocodea.py
Question: how do I obtain the path to the __main__ module (“a.py” in this case) from within the “b.py” library?
Answers:
Perhaps this will do the trick:
import sys
from os import path
print(path.abspath(str(sys.modules['__main__'].__file__)))
Note that, for safety, you should check whether the __main__ module has a __file__ attribute. If it’s dynamically created, or is just being run in the interactive python console, it won’t have a __file__:
python
>>> import sys
>>> print(str(sys.modules['__main__']))
<module '__main__' (built-in)>
>>> print(str(sys.modules['__main__'].__file__))
AttributeError: 'module' object has no attribute '__file__'
A simple hasattr() check will do the trick to guard against scenario 2 if that’s a possibility in your app.
import __main__
print(__main__.__file__)
The python code below provides additional functionality, including that it works seamlessly with py2exe executables.
I use similar code to like this to find paths relative to the running script, aka __main__. as an added benefit, it works cross-platform including Windows.
import imp
import os
import sys
def main_is_frozen():
return (hasattr(sys, "frozen") or # new py2exe
hasattr(sys, "importers") # old py2exe
or imp.is_frozen("__main__")) # tools/freeze
def get_main_dir():
if main_is_frozen():
# print 'Running from path', os.path.dirname(sys.executable)
return os.path.dirname(sys.executable)
return os.path.dirname(sys.argv[0])
# find path to where we are running
path_to_script=get_main_dir()
# OPTIONAL:
# add the sibling 'lib' dir to our module search path
lib_path = os.path.join(get_main_dir(), os.path.pardir, 'lib')
sys.path.insert(0, lib_path)
# OPTIONAL:
# use info to find relative data files in 'data' subdir
datafile1 = os.path.join(get_main_dir(), 'data', 'file1')
Hopefully the above example code can provide additional insight into how to determine the path to the running script…
import sys, os
def getExecPath():
try:
sFile = os.path.abspath(sys.modules['__main__'].__file__)
except:
sFile = sys.executable
return os.path.dirname(sFile)
This function will work for Python and Cython compiled programs.
Another method would be to use sys.argv[0].
import os
import sys
main_file = os.path.realpath(sys.argv[0]) if sys.argv[0] else None
sys.argv[0] will be an empty string if Python gets start with -c or if checked from the Python console.
I use this:
import __main__
name = __main__.__file__ # this gets file path
lastBar =int(name[::-1].find('/')) # change '/' for linux or '' for windows
extension = 3 #3 for python file .py
main_file_name=name[::-1][extension:lastBar][::-1] #result
Suppose I have two modules:
a.py:
import b
print __name__, __file__
b.py:
print __name__, __file__
I run the “a.py” file. This prints:
b C:pathtocodeb.py
__main__ C:pathtocodea.py
Question: how do I obtain the path to the __main__ module (“a.py” in this case) from within the “b.py” library?
Perhaps this will do the trick:
import sys
from os import path
print(path.abspath(str(sys.modules['__main__'].__file__)))
Note that, for safety, you should check whether the __main__ module has a __file__ attribute. If it’s dynamically created, or is just being run in the interactive python console, it won’t have a __file__:
python
>>> import sys
>>> print(str(sys.modules['__main__']))
<module '__main__' (built-in)>
>>> print(str(sys.modules['__main__'].__file__))
AttributeError: 'module' object has no attribute '__file__'
A simple hasattr() check will do the trick to guard against scenario 2 if that’s a possibility in your app.
import __main__
print(__main__.__file__)
The python code below provides additional functionality, including that it works seamlessly with py2exe executables.
I use similar code to like this to find paths relative to the running script, aka __main__. as an added benefit, it works cross-platform including Windows.
import imp
import os
import sys
def main_is_frozen():
return (hasattr(sys, "frozen") or # new py2exe
hasattr(sys, "importers") # old py2exe
or imp.is_frozen("__main__")) # tools/freeze
def get_main_dir():
if main_is_frozen():
# print 'Running from path', os.path.dirname(sys.executable)
return os.path.dirname(sys.executable)
return os.path.dirname(sys.argv[0])
# find path to where we are running
path_to_script=get_main_dir()
# OPTIONAL:
# add the sibling 'lib' dir to our module search path
lib_path = os.path.join(get_main_dir(), os.path.pardir, 'lib')
sys.path.insert(0, lib_path)
# OPTIONAL:
# use info to find relative data files in 'data' subdir
datafile1 = os.path.join(get_main_dir(), 'data', 'file1')
Hopefully the above example code can provide additional insight into how to determine the path to the running script…
import sys, os
def getExecPath():
try:
sFile = os.path.abspath(sys.modules['__main__'].__file__)
except:
sFile = sys.executable
return os.path.dirname(sFile)
This function will work for Python and Cython compiled programs.
Another method would be to use sys.argv[0].
import os
import sys
main_file = os.path.realpath(sys.argv[0]) if sys.argv[0] else None
sys.argv[0] will be an empty string if Python gets start with -c or if checked from the Python console.
I use this:
import __main__
name = __main__.__file__ # this gets file path
lastBar =int(name[::-1].find('/')) # change '/' for linux or '' for windows
extension = 3 #3 for python file .py
main_file_name=name[::-1][extension:lastBar][::-1] #result