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I'd just like to exit out of a with statement under certain conditions:

with open(path) as f:
    print 'before condition'
    if <condition>: break #syntax error!
    print 'after condition'

Of course, the above doesn't work. Is there a way to do this? (I know that I can invert the condition: if not <condition>: print 'after condition' -- any way that is like above?)

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2  
I'm curious why if not <condition> is undesirable in your situation. –  senderle Jun 25 '12 at 18:40
1  
@senderle I think having to indent the rest of the block can reduce readability and obscure the flow (especially in cases like this one where breaking out feels like the exception). Imagine three more conditions, with code blocks after each one... –  jmilloy Jun 25 '12 at 18:48

7 Answers 7

up vote 7 down vote accepted

The best way would be to encapsulate it in a function and use return:

def do_it():
    with open(path) as f:
        print 'before condition'
        if <condition>:
            return
        print 'after condition'
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with giving you trouble? Throw more with-able objects at the problem!

class fragile(object):
    class Break(Exception):
      """Break out of the with statement"""

    def __init__(self, value):
        self.value = value

    def __enter__(self):
        return self.value.__enter__()

    def __exit__(self, etype, value, traceback):
        error = self.value.__exit__(etype, value, traceback)
        if etype == self.Break:
            return True
        return error

Just wrap the expression you're going to with with fragile, and raise fragile.Break to break out at any point!

with fragile(open(path)) as f:
    print 'before condition'
    if condition:
        raise fragile.Break
    print 'after condition'

Benefits of this setup

  • Uses with and just the with; doesn't wrap your function in a semantically misleading one-run 'loop' or a narrowly specialized function, and doesn't force you to do any extra error handling after the with.
  • Keeps your local variables available, instead of having to pass them to a wrapping function.
  • Nestable!

    with fragile(open(path1)) as f:
        with fragile(open(path2)) as g:
            print f.read()
            print g.read()
            raise fragile.Break
            print "This wont happen"
        print "This will though!"
    

    This way, you don't have to create a new function to wrap the outer with if you want both to break.

  • Doesn't require restructuring at all: just wrap what you already have with fragile and you're good to go!

Downsides of this setup

  • Doesn't actually use a 'break' statement. Can't win em all ;)
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I think this is a better setup than most others. Doesn't require refactoring of the code, and fragile() is reusable. –  Mikhail Dec 9 at 5:41

Since break can only occur inside a loop your options are somewhat limited inside the with to:

  • return (put "with" + associated statements inside function)
  • exit (bail from program - probably not ideal)
  • exception (generate exception inside "with", catch below)

Having a function and using return is probably the cleanest and easiest solution here if you can isolate the with and the associated statements (and nothing else) inside a function.

Otherwise generate an exception inside the with when needed, catch immediately below/outside the with to continue the rest of the code.

Update: As OP suggests in the comments below (perhaps tonuge in cheek?) one could also wrap the with statement inside a loop to get the break to work - though that would be semantically misleading. So while a working solution, probably not something that would be recommend).

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Yes I know; I'd like to know if there's something that does work. –  jmilloy Jun 25 '12 at 18:33
    
Throw an exception –  Matthias Jun 25 '12 at 18:34
    
@Matthias Yeah I thought of that -- seems like wrapping it in a function is a bit cleaner. –  jmilloy Jun 25 '12 at 18:36
    
@Levon I actually tried with a return to check, but you can only return from a function block, not a with block. I'm sure you know this, but the way you wrote it makes it sound like returning only stops execution of the rest of the block in the with, whereas in reality it also prevents any code after the with block but in the same function. –  jmilloy Jun 25 '12 at 18:39
    
@Matthias In fact, I often find myself wishing that with blocks were like try blocks and could be cleanly followed by exception cases. That's what I'd do if I could. –  jmilloy Jun 25 '12 at 18:53

You could put everything inside a function, and when the condition is true call a return.

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f = open("somefile","r")
for line in f.readlines():
       if somecondition: break;
f.close()

I dont think you can break out of the with... you need to use a loop...

[edit] or just do the function method others mentioned

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I think you should just restructure the logic:

with open(path) as f:
    print 'before condition checked'
    if not <condition>:
        print 'after condition checked'
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3  
That's not the question. –  jmilloy Jun 25 '12 at 18:54
3  
@jmilloy, I think this is at least as good a solution as encapsulating the with statement in a function and using return, or raising an exception. Frankly, under many circumstances, I think this would be the most elegant and readable solution. –  senderle Jun 25 '12 at 18:58
    
@senderle Agreed 100%. However, it's simply not the question. –  jmilloy Jun 25 '12 at 19:01
3  
Well, I guess if we're discussing hypothetical poor constructs that Python doesn't allow, we could bemoan the lack of a decent goto statement :-) entrian.com/goto –  K. Brafford Jun 25 '12 at 19:20

as shorthand snippet:

class a:
    def __enter__(self):
        print 'enter'
    def __exit__(self ,type, value, traceback):
        print 'exit'

for i in [1]:
    with a():
        print("before")
        break
        print("after")

...

enter
before
exit
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