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I am trying to create generic exception handler - for where I can set an arg to return in case of exception, inspired from this answer.

import contextlib


@contextlib.contextmanager
def handler(default):
    try:
        yield
    except Exception as e:
        yield default


def main():
    with handler(0):
        return 1 / 0

    with handler(0):
        return 100 / 0

    with handler(0):
        return 'helllo + 'cheese'

But this results in

RuntimeError: generator didn't stop after throw()
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My python interpreter will not even try to read those syntax errors at the end. (2.7, under gnu) –  Johan Lundberg Nov 3 '12 at 23:03
    
@JohanLundberg exactly. What code did you use to reproduce the OP's error? –  pydsigner Nov 3 '12 at 23:05
    
You may be able to do this with a custom context manager class, but not this decorator. –  Keith Nov 3 '12 at 23:28

1 Answer 1

up vote 3 down vote accepted

The main conceptual problem is that you try to make the calling function implicitly return a value from within a called function. To give an example, what you are trying to do is coneptually equivalent to this situation:

def f():
    # some magic code here

def g():
    f()

And now you want the magic code to make g() return some value. This is never going to work.

Context managers are the wrong tool for this purpose. Consider using a decorator instead.

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@JonClements: OK, I should be more specific. By "this is never going to work" I mean "you're never going to make those with blocks work in the way you intend". Of course you can write a wrapper function, but I'd suggest to use a decorator instead. –  Sven Marnach Nov 3 '12 at 23:20
    
That makes more sense :) –  Jon Clements Nov 3 '12 at 23:23
    
can you give an example of using this code please? pastebin.com/7V7ruJA6 –  rikAtee Nov 3 '12 at 23:24
    
I don't think that is correct. The real reason is that this decorator requires a generator that yields only one value. This one yields two values, thus is not "stopped" at the end, as the error says. –  Keith Nov 3 '12 at 23:31
1  
@rikAtee Umm no - pretend that code doesn't exist! The correct way is pdysigner's answer per your follow up question: stackoverflow.com/questions/13214377/… –  Jon Clements Nov 3 '12 at 23:31

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