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Python 2 had the builtin function execfile, which was removed in Python 3.0. This question discusses alternatives for Python 3.0, but some considerable changes have been made since Python 3.0.

What is the best alternative to execfile for Python 3.2, and future Python 3.x versions?

67

The 2to3 script replaces

execfile(filename, globals, locals)

by

exec(compile(open(filename, "rb").read(), filename, 'exec'), globals, locals)

This seems to be the official recommendation. You may want to use a with block to ensure that the file is promptly closed again:

with open(filename, "rb") as source_file:
    code = compile(source_file.read(), filename, "exec")
exec(code, globals, locals)

You can omit the globals and locals arguments to execute the file in the current scope, or use exec(code, {}) to use a new temporary dictionary as both the globals and locals dictionary, effectively executing the file in a new temporary scope.

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  • 1
    Why is this better than Lennart's version? – Matt Joiner Jun 15 '11 at 23:07
  • @Matt: The advantages are (a) error message will include the correct filename and (b) it seems to be the official recommendation, so maybe there are advantages we aren't aware of. If you omit the globals and locals parameters, it will also work in all versions of Python. – Sven Marnach Jun 16 '11 at 0:21
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    @SvenMarnach, if you can post a link to official recommendation or source code (so that people can be sure it won't be "fixed" in future), I'd give it a +1. =) – anatoly techtonik Dec 6 '13 at 11:49
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    @kenorb: It does work in Python 3.4. You apparently tried to use the last line without replacing locals and globals with whatever you want to have there instead. They are just placeholders, I can't know what you want to pass in, or whether you want to omit them altogether. I consider this the "official" recommendation because this is how the "official" 2to3 tool migrates execfile() calls. – Sven Marnach May 3 '15 at 15:44
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    @vinaygarg These are dictionaries with the global and lcoal variables the file is supposed to be executed within. You can omit them to execute the file in the current scope. A common alternative is to use exec(..., {}) to execute the file in a new temporary scope. – Sven Marnach Mar 30 at 8:04
56
execfile(filename)

can be replaced with

exec(open(filename).read())

which works in all versions of Python

Newer versions of Python will warn you that you didn't close that file, so then you can do this is you want to get rid of that warning:

with open(filename) as infile:
    exec(infile.read())

But really, if you care about closing files, you should care enough to not use exec in the first place.

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  • Why is this better than Sven's version? – Matt Joiner Jun 15 '11 at 23:07
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    @Matt: It's simpler? – Lennart Regebro Jun 16 '11 at 3:07
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    @VPeric: In Python 2.x, you need to use the exec ... in ... form of exec in such a situation. For example exec code in globals() will execute the code in the module's global namespace. Note that the exec'ed code can't change local variables in a way that is reliably visible by the nested function. – Sven Marnach Nov 3 '11 at 13:02
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    @VPeric: All of the stuff here works, if you have a specific problem, make it a question. – Lennart Regebro Nov 6 '11 at 15:49
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    No, it will be closed when garbage collected, so it doesn't have to (although it's a good idea to close it). – Lennart Regebro Apr 22 '16 at 15:57
7

In Python3.x this is the closest thing I could come up with to executing a file directly, that matches running python /path/to/somefile.py.

Notes:

  • Uses binary reading to avoid encoding issues
  • Garenteed to close the file (Python3.x warns about this)
  • defines __main__, some scripts depend on this to check if they are loading as a module or not for eg. if __name__ == "__main__"
  • setting __file__ is nicer for exception messages and some scripts use __file__ to get the paths of other files relative to them.
def exec_full(filepath):
    import os
    global_namespace = {
        "__file__": filepath,
        "__name__": "__main__",
    }
    with open(filepath, 'rb') as file:
        exec(compile(file.read(), filepath, 'exec'), global_namespace)

# execute the file
exec_full("/path/to/somefile.py")
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3

Standard runpy.run_path is an alternative.

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