Multiple variables in a 'with' statement?
https://stackoverflow.com/questions/893333
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23-08-2019 - |
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Is it possible to declare more than one variable using a with statement in Python?
Something like:
from __future__ import with_statement
with open("out.txt","wt"), open("in.txt") as file_out, file_in:
for line in file_in:
file_out.write(line)
... or is cleaning up two resources at the same time the problem?
Solution
It is possible in Python 3 since v3.1 and Python 2.7. The new with syntax supports multiple context managers:
with A() as a, B() as b, C() as c:
doSomething(a,b,c)
Unlike the contextlib.nested, this guarantees that a and b will have their __exit__()'s called even if C() or it's __enter__() method raises an exception.
OTHER TIPS
contextlib.nested supports this:
import contextlib
with contextlib.nested(open("out.txt","wt"), open("in.txt")) as (file_out, file_in):
...
Update:
To quote the documentation, regarding contextlib.nested:
Deprecated since version 2.7: The with-statement now supports this functionality directly (without the confusing error prone quirks).
See Rafał Dowgird's answer for more information.
Note that if you split the variables into lines, you must use backslashes to wrap the newlines.
with A() as a, \
B() as b, \
C() as c:
doSomething(a,b,c)
Parentheses don't work, since Python creates a tuple instead.
with (A(),
B(),
C()):
doSomething(a,b,c)
Since tuples lack a __enter__ attribute, you get an error (undescriptive and does not identify class type):
AttributeError: __enter__
If you try to use as within parentheses, Python catches the mistake at parse time:
with (A() as a,
B() as b,
C() as c):
doSomething(a,b,c)
SyntaxError: invalid syntax
https://bugs.python.org/issue12782 seems to be related to this issue.
I think you want to do this instead:
from __future__ import with_statement
with open("out.txt","wt") as file_out:
with open("in.txt") as file_in:
for line in file_in:
file_out.write(line)
Since Python 3.3, you can use the class ExitStack from the contextlib module.
It can manage a dynamic number of context-aware objects, which means that it will prove especially useful if you don't know how many files you are going to handle.
The canonical use-case that is mentioned in the documentation is managing a dynamic number of files.
with ExitStack() as stack:
files = [stack.enter_context(open(fname)) for fname in filenames]
# All opened files will automatically be closed at the end of
# the with statement, even if attempts to open files later
# in the list raise an exception
Here is a generic example:
from contextlib import ExitStack
class X:
num = 1
def __init__(self):
self.num = X.num
X.num += 1
def __repr__(self):
cls = type(self)
return '{cls.__name__}{self.num}'.format(cls=cls, self=self)
def __enter__(self):
print('enter {!r}'.format(self))
return self.num
def __exit__(self, exc_type, exc_value, traceback):
print('exit {!r}'.format(self))
return True
xs = [X() for _ in range(3)]
with ExitStack() as stack:
print(stack._exit_callbacks)
nums = [stack.enter_context(x) for x in xs]
print(stack._exit_callbacks)
print(stack._exit_callbacks)
print(nums)
Output:
deque([])
enter X1
enter X2
enter X3
deque([<function ExitStack._push_cm_exit.<locals>._exit_wrapper at 0x7f5c95f86158>, <function ExitStack._push_cm_exit.<locals>._exit_wrapper at 0x7f5c95f861e0>, <function ExitStack._push_cm_exit.<locals>._exit_wrapper at 0x7f5c95f86268>])
exit X3
exit X2
exit X1
deque([])
[1, 2, 3]
