303

It seems they canceled in Python 3 all the easy way to quickly load a script by removing execfile()

Is there an obvious alternative I'm missing?

  • 1
    reload is back, as imp.reload, since 3.2. – Dougal May 16 '13 at 1:21
  • 17
    If you are using Python interactively consider using IPython: %run script_name works with all version of Python. – Michael Feb 24 '14 at 19:23
  • 1
    Since 3.4 imp is importlib (which must be imported): importlib.reload(mod_name) imports and executes mod_name. – P. Wormer Sep 9 '17 at 13:28
  • 2
    what's wrong with runfile("filename.py") ? – mousomer Nov 27 '17 at 10:01

11 Answers 11

331

According to the documentation, instead of

execfile("./filename") 

Use

exec(open("./filename").read())

See:

  • 47
    Any idea why they would do such a thing? This is so much more verbose than before. Also, it doesn't work for me on Python3.3. I get "No such file or directory" when I exec(open('./some_file').read()). I have tried including the '.py' extension and also excluding the './' as well – JoeyC Feb 20 '14 at 0:20
  • 21
    Less trivially, this doesn't provide line numbers when exceptions are raised, as did execfile(). – KDN Jul 27 '15 at 19:57
  • 29
    You'll need to close that file handle too. Another reason to dislike the change from python 2. – Rebs Oct 19 '15 at 5:02
  • 3
    @Rebs you don't need to close the file handle in that example, it will be done automatically (at least in regular CPython) – tiho Feb 1 '17 at 20:16
  • 4
    @Rebs in CPython objects are garbage-collected as soon as their reference count goes to 0, only circular references may delay this (stackoverflow.com/questions/9449489/…). In that case that should happen right after read() returns. And file objects are closed on deletion (NB: I realize this link explicitly says "always close files", which is indeed good practice to follow in general) – tiho Feb 2 '17 at 16:45
201

You are just supposed to read the file and exec the code yourself. 2to3 current replaces

execfile("somefile.py", global_vars, local_vars)

as

with open("somefile.py") as f:
    code = compile(f.read(), "somefile.py", 'exec')
    exec(code, global_vars, local_vars)

(The compile call isn't strictly needed, but it associates the filename with the code object making debugging a little easier.)

See:

  • 3
    This works for me. However, I noticed that you've written the local and global arguments in the wrong order. It's actually: exec(object[, globals[, locals]]). Of course if you had the arguments flipped in the original, then 2to3 will produce exactly what you said. :) – Nathan Shively-Sanders May 21 '09 at 20:27
  • 2
    Was pleased to discover that, if you can omit global_vars and local_vars, the python3 replacement here works under python2 as well. Even though exec is a statement in python2, exec(code) works because the parens just get ignored. – medmunds Mar 5 '13 at 5:25
  • 2
    +1 for using compile. My "somefile.py" contained inspect.getsourcefile(lambda _: None) which was failing without the compile, because the inspect module couldn't determine where the code was coming from. – ArtOfWarfare Oct 7 '14 at 13:35
  • 11
    That's... really ugly. Any idea why they got rid of execfile() in 3.x? execfile also made it easy to pass commandline args. – aneccodeal Mar 26 '15 at 23:29
  • 1
    open("somefile.py") may be incorrect if somefile.py uses a character encoding different from locale.getpreferredencoding(). tokenize.open() could be used instead. – jfs Mar 23 '16 at 14:39
56

While exec(open("filename").read()) is often given as an alternative to execfile("filename"), it misses important details that execfile supported.

The following function for Python3.x is as close as I could get to having the same behavior as executing a file directly. That matches running python /path/to/somefile.py.

def execfile(filepath, globals=None, locals=None):
    if globals is None:
        globals = {}
    globals.update({
        "__file__": filepath,
        "__name__": "__main__",
    })
    with open(filepath, 'rb') as file:
        exec(compile(file.read(), filepath, 'exec'), globals, locals)

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

Notes:

  • Uses binary reading to avoid encoding issues
  • Guaranteed 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.
  • Takes optional globals & locals arguments, modifying them in-place as execfile does - so you can access any variables defined by reading back the variables after running.

  • Unlike Python2's execfile this does not modify the current namespace by default. For that you have to explicitly pass in globals() & locals().

52

As suggested on the python-dev mailinglist recently, the runpy module might be a viable alternative. Quoting from that message:

https://docs.python.org/3/library/runpy.html#runpy.run_path

import runpy
file_globals = runpy.run_path("file.py")

There are subtle differences to execfile:

  • run_path always creates a new namespace. It executes the code as a module, so there is no difference between globals and locals (which is why there is only a init_globals argument). The globals are returned.

    execfile executed in the current namespace or the given namespace. The semantics of locals and globals, if given, were similar to locals and globals inside a class definition.

  • run_path can not only execute files, but also eggs and directories (refer to its documentation for details).

  • 1
    For some reason, it outputs to the screen a lot of information it was not asked to print ('builtins' etc in Anaconda Python 3). Is there some way to turn this off so that only the information which I output with print() gets visualized? – John Donn Jan 8 '17 at 12:00
  • Is it also possible to get all the variables in the current workspace instead of them all being stored in file_globals? This would save having to type the file_globals['...'] for every variable. – Adriaan Aug 17 '17 at 8:03
  • 2
    @Adriaan globals().update(file_globals) – Jonas Schäfer Apr 11 '18 at 8:54
18

This one is better, since it takes the globals and locals from the caller:

import sys
def execfile(filename, globals=None, locals=None):
    if globals is None:
        globals = sys._getframe(1).f_globals
    if locals is None:
        locals = sys._getframe(1).f_locals
    with open(filename, "r") as fh:
        exec(fh.read()+"\n", globals, locals)
  • Actually, this one is the closer to py2 execfile. It even worked for my when using pytests where other solutions posted above failed. Thx! :) – Boriel Jun 14 at 11:06
18

You could write your own function:

def xfile(afile, globalz=None, localz=None):
    with open(afile, "r") as fh:
        exec(fh.read(), globalz, localz)

If you really needed to...

  • 1
    -1: the exec statment doesn't work this way. Code doesn't run in any version of python. – nosklo Aug 22 '09 at 13:33
  • 2
    -1: Not reliable. Some uses of execfile are incompatible. – Brian Dec 27 '09 at 10:30
  • 6
    -1: The default parameter values are evaluated at function definition time, making both globals and locals point to the global namespace fo the module containing the definition of execfile() rather than to the global and local namespace of the caller. The correct approach is to use None as default value and determine the caller's globals and locals via the introspection capabilities of the inspect module. – Sven Marnach Nov 3 '11 at 13:20
11

If the script you want to load is in the same directory than the one you run, maybe "import" will do the job ?

If you need to dynamically import code the built-in function __ import__ and the module imp are worth looking at.

>>> import sys
>>> sys.path = ['/path/to/script'] + sys.path
>>> __import__('test')
<module 'test' from '/path/to/script/test.pyc'>
>>> __import__('test').run()
'Hello world!'

test.py:

def run():
        return "Hello world!"

If you're using Python 3.1 or later, you should also take a look at importlib.

8

Here's what I had (file is already assigned to the path to the file with the source code in both examples):

execfile(file)

Here's what I replaced it with:

exec(compile(open(file).read(), file, 'exec'))

My favorite part: the second version works just fine in both Python 2 and 3, meaning it's not necessary to add in version dependent logic.

5

Note that the above pattern will fail if you're using PEP-263 encoding declarations that aren't ascii or utf-8. You need to find the encoding of the data, and encode it correctly before handing it to exec().

class python3Execfile(object):
    def _get_file_encoding(self, filename):
        with open(filename, 'rb') as fp:
            try:
                return tokenize.detect_encoding(fp.readline)[0]
            except SyntaxError:
                return "utf-8"

    def my_execfile(filename):
        globals['__file__'] = filename
        with open(filename, 'r', encoding=self._get_file_encoding(filename)) as fp:
            contents = fp.read()
        if not contents.endswith("\n"):
            # http://bugs.python.org/issue10204
            contents += "\n"
        exec(contents, globals, globals)
  • 2
    What is "the above pattern"? Please use links when referring to other posts on StackOverflow. Relative positioning terms like "the above" don't work, as there are 3 different ways of sorting answers (by votes, by date, or by activity) and the most common one (by votes) is volatile. Over time your post and posts around yours will end up with different scores, meaning they'll be rearranged and such comparisons will be less useful. – ArtOfWarfare Oct 7 '14 at 13:15
  • Very good point. And given that I wrote this answer almost six months ago, I assume by "above pattern" I meant stackoverflow.com/a/2849077/165082 (which unfortunately you have to click on to resolve), or better still Noam's answer: – Eric Oct 7 '14 at 17:33
  • 2
    Generally when I want to refer to other answers to the same question from my answer, I type "Noam's Answer" (for example) and link the text to the answer I'm referring to, just for in case the answer becomes disassociated from the user in the future, IE, because the user changes their account name or the post becomes a communal wiki because too many edits have been made on it. – ArtOfWarfare Oct 7 '14 at 17:37
  • How do you get the URL to a specific "answer" with in a post, excluding the poster's name of the answer? – DevPlayer Apr 8 '15 at 14:42
  • View the source and get the ID. For example, your question would be stackoverflow.com/questions/436198/… . I'm all for a better method, but don't see anything when I hover near the comment – Eric Apr 8 '15 at 19:07
3

Also, while not a pure Python solution, if you're using IPython (as you probably should anyway), you can do:

%run /path/to/filename.py

Which is equally easy.

1

I'm just a newbie here so maybe it's pure luck if I found this :

After trying to run a script from the interpreter prompt >>> with the command

    execfile('filename.py')

for which I got a "NameError: name 'execfile' is not defined" I tried a very basic

    import filename

it worked well :-)

I hope this can be helpful and thank you all for the great hints, examples and all those masterly commented pieces of code that are a great inspiration for newcomers !

I use Ubuntu 16.014 LTS x64. Python 3.5.2 (default, Nov 17 2016, 17:05:23) [GCC 5.4.0 20160609] on linux

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