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How do I test my parameter if it will raise an exception without actually raising it, using try and except?

class MyClass:
    def function(parameter):
        pass

parameter is an ambiguous function that may raise 1 or more of any exception, for example:

parameter = pow("5", 5)

A TypeError is raised as soon as the function is called and before the function can execute its statements.

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Why don't you want to use try ... except? Just for curiosity or is there any other reason? –  Praveen Gollakota Jan 26 '12 at 23:00
    
Sorry if I was unclear, I do want to use try and except, but I don't know how it would work in the parameters. –  Christopher Markieta Jan 26 '12 at 23:02
    
What your parameter will raise depends on how your function is implemented. In your example I don't see how parameter could raise an exception inside function. –  Rik Poggi Jan 26 '12 at 23:06
    
If parameter is invalid it will raise an exception as soon as it is called. I want to be able to "catch" the exception with try and except. I do not have any information on what parameter will be except that it is a function and will raise any exception. –  Christopher Markieta Jan 26 '12 at 23:10
    
Sorry, I can't make any sense of this. What do you mean by parameter being invalid? What do you mean by "it might/will raise an exception"? Values don't raise exceptions, operations do. You have to try to do something with the parameter for any problem to occur. –  Karl Knechtel Jan 26 '12 at 23:42

4 Answers 4

up vote 0 down vote accepted

In a comment to another answer you said: "parameter is another function; take for example: parameter = pow("5", 5) which raises a TypeError, but it could be any type of function and any type of exception."

If you want to catch the exeption inside your function you have to call the paramenter (which I'm assuming is callable) inside that function:

def function(callable, args=()):
    try:
        callable(*args)
    except:
        print('Ops!')

Example:

>>> function(pow, args=("5", 5))
Ops!

This is if you really need to call your "paramenter" inside the function. Otherwise your should manage its behaviour outside, maybe with something like:

>>> try:
...     param = pow('5', 5)
... except:
...     param = 10
... 
>>> param
10
>>> function(param)

In this example, to raise an exception is pow not function, so it's a good practice to separate the the two different call, and wrap with a try-except statement the code that might fail.

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What if parameter was just a function without any parameters itself? –  Christopher Markieta Jan 26 '12 at 23:57
    
@ChristopherM: If parameter is a function that does not require any argument then just call function(parameter) becaue by default args=(). –  Rik Poggi Jan 27 '12 at 0:03
    
Okay thank you, I understand now. –  Christopher Markieta Jan 27 '12 at 0:11

From what I can understand, you want to handle the exceptions raised and also inspect what sort of errors were raised for further inspection? Here is one way of doing it.

class Foo(object):
    def find_errors(arg):
        errors = []
        try:
            # do something
        except TypeError as e:
            errors.append(e)
            # handle exception somehow
        except ValueError as e:
            errors.append(e)
            # handle exception somehow
        # and so on ...
        finally:
            pass #something here

        return errors, ans

Now you can inspect errors and find out what exceptions have been raised.

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If you expect the parameter to be a certain type, you can use type(paramter) is parametertype.

For example, if you wanted to verify that 'i' is an int, run instructions if(type(i) is int):

By edit:

try:
    pow("5",5)
    return 0
except Exception, err:
    sys.stderr.write('ERROR: %s\n' % str(err))
    return 1
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I need to be able to count the number of exceptions raised by parameter without actually raising one. –  Christopher Markieta Jan 26 '12 at 23:03
    
What type is the parameter? Or is it the function you are testing for error throwing, and not the parameter? –  Emrakul Jan 26 '12 at 23:04
    
If you put at the beginning of your function if(type(parameter) is int) and return if it is not the correct type, then your problem is solved. If I understand the problem. –  Emrakul Jan 26 '12 at 23:06
    
parameter is another function; take for example: parameter = pow("5", 5) which raises a TypeError, but it could be any type of function and any type of exception. –  Christopher Markieta Jan 26 '12 at 23:07
    
You can actually use a try/except to catch any type of exception. For example, see the edits to the comment above (code blocks are hard to type in comments) –  Emrakul Jan 26 '12 at 23:10

Perhaps what you mean is how to catch the TypeError exceptions caused by invalid function calls?

Like this:

def foo(bar):
    pass

foo(1, 2)

You don't catch them in the function and certainly not in the def foo(bar): line.

It's the caller of the function that made an error so that's where you catch the exception:

try:
    foo(1, 2)
except TypeError:
    print('call failed')
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