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I'm not even sure what the right words are to search for. I want to display parts of the error object in an except block (similar to the err object in VBScript, which has Err.Number and Err.Description). For example, I want to show the values of my variables, then show the exact error. Clearly, I am causing a divided-by-zero error below, but how can I print that fact?

try: 
    x = 0 
    y = 1 
    z = y / x 
    z = z + 1 
    print "z=%d" % (z) 
except: 
    print "Values at Exception: x=%d y=%d " % (x,y) 
    print "The error was on line ..." 
    print "The reason for the error was ..."

UPDATED: Working Result Below:

Based on the "clue" left by answer below, this works. I find it un-intuitive (and thus I forget it easily) because I would expect to be doing something like "print traceback.text".

import sys, traceback
try: 
    x = 0 
    y = 1 
    z = y / x 
    z = z + 1 
    print "z=%d" % (z) 
except: 
    print "Values at Exception: x=%d y=%d " % (x,y) 
    traceback.print_exc(file=sys.stdout)

Results:

Values at Exception: x=0 y=1
Traceback (most recent call last):
  File "C:\TextSearch\DemoException.py", line 5, in <module>
    z = y / x
ZeroDivisionError: integer division or modulo by zero

I was typing the above, based on the first response, then other people were still posting. Apparently, I don't need the "import sys" and can just use tracekback.print-exc().

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No, that's not how... –  Ignacio Vazquez-Abrams Dec 30 '10 at 6:00

5 Answers 5

up vote 10 down vote accepted

If you're expecting a DivideByZero error, you can catch that particular error

import traceback
try:
  x = 5
  y = 0
  print x/y
except ZeroDivisionError:
  print "Error Dividing %d/%d" % (x,y)
  traceback.print_exc()
except:
  print "A non-ZeroDivisionError occurred"

You can manually get the line number and other information by calling traceback.print_exc()

share|improve this answer
    
Thanks. I was really looking for the "traceback" - couldn't remember what it was called, because I was looking for an error or exception object. –  NealWalters Dec 30 '10 at 6:04
    
The DivideByZero was just a simple error used for my post, my actual situation is much more complex. –  NealWalters Dec 30 '10 at 6:10
try:  
    1 / 0 
except Exception as e: 
    print e
share|improve this answer
1  
Doesn't give stack-trace or line-number of error. –  NealWalters Dec 30 '10 at 6:06
2  
it gives the reason, which is what your original question asked for. –  Corey Goldberg Dec 30 '10 at 6:07

The string value of the exception object will give you the reason. The traceback module will allow you access to the full traceback.

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In other words,

try:
    1/0
except Exception as e:
    print e

You can get the details in the manual pages linked by Ignacio in his response.

share|improve this answer
    
Doesn't give stack-trace or line-number of error. –  NealWalters Dec 30 '10 at 6:05

A better approach is to make use of the standard Python Logging module.

import sys, traceback, logging

logging.basicConfig(level=logging.ERROR)

try: 
    x = 0 
    y = 1 
    z = y / x 
    z = z + 1 
    print "z=%d" % (z) 
except: 
    logging.exception("Values at Exception: x=%d y=%d " % (x,y))

This produces the following output:

ERROR:root:Values at Exception: x=0 y=1 
Traceback (most recent call last):
  File "py_exceptions.py", line 8, in <module>
    z = y / x
ZeroDivisionError: integer division or modulo by zero

The advantage of using the logging module is that you have access to all the fancy log handlers (syslog, email, rotating file log), which is handy if you want your exception to be logged to multiple destinations.

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