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It seems that calling throw on a generator takes a type of an exception. How should I rethrow an instance of an exception (that I've already caught)?

EDIT: Consider

def g():
        yield 1
    except Exception as e:
        yield 2

def f():
   x = g()
   print x.throw(Exception)

But how can I throw an instance of an exception that already exists?

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Could you please explain your question in more detail? Show some code maybe? It's not very clear at the moment. –  Lev Levitsky Apr 14 '13 at 19:56
Python doesn't have a catch. –  millimoose Apr 14 '13 at 20:15
Oh yeah.... That's embarrassing. I fixed that. –  Paul Draper Apr 14 '13 at 20:19

1 Answer 1

up vote 3 down vote accepted

The arguments to generator.throw(...) exactly mirror the arguments to the raise statement. So it doesn't have to be an exception class; it can be an exception object, just like with raise.

This works perfectly fine:

x.throw(Exception("i'm an argument"))

The documentation is, admittedly, extremely misleading on this. The PEP at least gives you a hint:

The effect of raising the exception is exactly as if the statement:

raise type, value, traceback

was executed at the suspension point.

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I tried and saw it worked ... I just didn't know if that was defined to work, according to the standard –  Paul Draper Apr 14 '13 at 20:21

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