Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

In Python, once I have imported a module X in an interpreter session using import X, and the module changes on the outside, I can reload the module with reload(X). The changes then become available in my interpreter session.

I am wondering if this also possible when I import a component Y from module X using from X import Y.

The statement reload Y does not work, since Y is not a module itself, but only a component (in this case a class) inside of a module.

Is it possible at all to reload individual components of a module without leaving the interpreter session (or importing the entire module)?

EDIT:

For clarification, the question is about importing a class or function Y from a module X and reloading on a change, not a module Y from a package X.

share|improve this question
    
I believe there is a contradiction in this question: "... possible ... import a component Y from module X" vs "question is ... importing a class or function X from a module Y". I'm adding an edit to that effect. –  Catskul Jul 30 '12 at 14:50
    
it appears that the marked answer does not actually answer the question, I believe mine does. Can you update/comment? –  Catskul Mar 16 at 10:03

5 Answers 5

up vote 13 down vote accepted

If Y is a module (and X a package) reload(Y) will be fine -- otherwise, you'll see why good Python style guides (such as my employer's) say to never import anything except a module (this is one out of many great reasons -- yet people still keep importing functions and classes directly, no matter how much I explain that it's not a good idea;-).

share|improve this answer
    
I see your point. Would you care to elaborate on any of the other good reasons why it is not a good idea? –  cschol Nov 16 '09 at 3:55
3  
@cschol: Zen of Python, last verse (import this from interactive prompt to see the Zen of Python); and all the reasons why namespaces are a honking great idea (immediate local visual clues that the name's being looked up, ease of mocking/injecting in tests, ability to reload, ability for a module to change flexibly by redefining some entries, predictable and controllable behavior on serialization and recovery of your data [[e.g. by pickling and unpickling]], and so on, and so forth -- a SO comment is hardly long enough to do justice to this rich, long argument!!!-) –  Alex Martelli Nov 16 '09 at 5:20
    
+1 for answer, rich, long comment and mentioning your employer's style guide. :) –  cschol Nov 17 '09 at 1:41
    
I'm not sure if it might be because of the contradiction confusion in the OP, but this appears to be incorrect. –  Catskul Jul 30 '12 at 15:07
    
note that in Python 3, reload is no longer in the default namespace but has been moved to the importlib package. importlib.reload(Y) docs.python.org/3.4/library/… see also stackoverflow.com/questions/961162/… –  flies Dec 13 at 21:58

Answer

From my tests. The marked answer, which suggests a simple reload(X), does not work.

From what I can tell the correct answer is:

import X
reload( X )
from X import Y

Test

My test was the following (Python 2.6.5 + bpython 0.9.5.2)

X.py:

def Y():
    print "Test 1"

bpython:

>>> from X import Y
>>> print Y()
Test 1
>>> # Edit X.py to say "Test 2"
>>> print Y()
Test 1
>>> reload( X )  # doesn't work because foo not imported yet
Traceback (most recent call last):
  File "<input>", line 1, in <module>
NameError: name 'X' is not defined
>>> import X
>>> print Y()
Test 1
>>> print X.Y()
Test 1
>>> reload( X ) # No effect on previous "from" statements
>>> print Y()
Test 1
>>> print X.Y() # first one that indicates refresh
Test 2
>>> from X import Y
>>> print Y()
Test 2 
>>> # Finally get what we were after
share|improve this answer
    
Wow. I found this really handy. Thanks! I use this as one liner now: import X; reload( X ); from X import Y –  otterb Apr 23 at 22:26

First off, you shouldn't be using reload at all, if you can avoid it. But let's assume you have your reasons (i.e. debugging inside IDLE).

Reloading the library won't get the names back into the module's namespace. To do this, just reassign the variables:

f = open('zoo.py', 'w')
f.write("snakes = ['viper','anaconda']\n")
f.close()

from zoo import snakes
print snakes

f = open('zoo.py', 'w')
f.write("snakes = ['black-adder','boa constrictor']\n")
f.close()

import zoo
reload(zoo)
snakes = zoo.snakes # the variable 'snakes' is now reloaded

print snakes

You could do this a few other ways. You could automate the process by searching through the local namespace, and reassigning anything that was from the module in question, but I think we are being evil enough.

share|improve this answer
  1. reload() module X,
  2. reload() module importing Y from X.

Note that reloading won't change already created objects bound in other namespaces (even if you follow style guide from Alex).

share|improve this answer
from modulename import func

import sys
reload(sys.modules['modulename'])
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.