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How can I get the type of an Exception in python 1.5.2?

doing this:

    raise "ABC"
except Exception as e:
    print str(e)

gives an SyntaxError:

  except Exception as e:

SyntaxError: invalid syntax

EDIT: this does not work:

    a = 3
    b = not_existent_variable
except Exception, e:
    print "The error is: " + str(e) + "\n"

a = 3
b = not_existent_variable

as I only get the argument, not the actual error (NameError):

The error is: not_existent_variable

Traceback (innermost last):
  File "C:\Users\jruegg\Desktop\", line 8, in ?
    b = not_existent_variable
NameError: not_existent_variable
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1 Answer 1

up vote 9 down vote accepted


except Exception, e:

In Python 1 and 2. (Although as also works in Python 2.6 and 2.7).

(Why on earth are you using 1.5.2!?)

To then get the type of the error you use type(e). To get the type name in Python 2 you use type(e).__name__, I have no idea if that works in 1.5.2, you'll have to check the docs.

Update: It didn't, but e.__class__.__name__ did.

share|improve this answer
Perhaps he's using it on the Palm Pilot where development stopped at 1.5.2... And my upvote is now pushing you over the 10k barrier - congratulations! – Tim Pietzcker Dec 16 '10 at 8:40
Thank you! It feels awesome! – Lennart Regebro Dec 16 '10 at 8:41
Use your new powers wisely, young Padawan. :) – Tim Pietzcker Dec 16 '10 at 8:42
Something like that... I'm working on a telit gsm module (, and 1.5.2 is in hardware. However, your solution does not seem to work... (see my edit) – Jan Rüegg Dec 16 '10 at 8:44
Ah, right, of course, it's an old-style class in 1.5.2. Try e.__class__.__name__. – Lennart Regebro Dec 16 '10 at 9:04

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