Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free.
commands = ['chat', 'call', 'exit', 'friends', 'status']

class MainHub(object):
    def menu(self):
        while True:
            selection = raw_input("> ")
            if selection != any(commands):
                print "Not a recognized command!\n"
            else:
                print selection

it prints "Not a recognized command!" everytime, even if selection is something like 'chat' or 'call'. It's a very simple snippet of code, but I just can't seem to see what's wrong with it!

share|improve this question

4 Answers 4

up vote 4 down vote accepted

You don't want the any function, you want the not in syntax:

if selection not in commands:

any is from predicate calculus and checks whether any of its inputs are True. In this case, you're comparing your input to any(commands), which is True since there is a True element in commands.

share|improve this answer
    
Gee whiz. I dumb. –  TomKo Dec 4 '11 at 2:18
    
For more information, check out the Python reference. You can also find any. For easier ways to find stuff in the reference, just do a search on it, or do a Google search (easier to do a Google search). For example, a search for 'Python any'. –  John Doe Dec 4 '11 at 2:39
    
I did refer to documentation for any(), but completely misread it. Oh well, I learned something today I suppose. –  TomKo Dec 4 '11 at 2:46

selection != any(commands)

This seems to be a very common class of errors for beginners, although I've only started noticing it recently. Another common attempt is to use things like value == (3 or 4 or 5), which is fundamentally the same mistake.

In programming, comparison is comparison and set-membership testing is set-membership testing. They cannot be confused, they way they can in English. Programming requires us to be precise about what we mean, and not allow ourselves to be misled by casual phrasing of what we really mean.

What you have written means "if selection is not equal to (the truth-value of whether any of the commands is true)". The function call returns either True or False (in fact, it returns True, because at least one of the commands is a non-empty string - in fact, they all are - and non-empty strings are "true-ish" while empty strings are "false-ish"), and you compare selection to that value. It will never be equal, because selection is a string, and strings aren't even the same kind of thing as True or False, which are booleans, let alone equal.

What you meant was "if selection is not one of the commands", i.e. "if it is not the case that selection is contained within commands". That is a set-membership question, not a comparison one.

In Python, we accomplish set-membership testing using the in keyword. The grammar allows us to write the perfectly natural sounding if selection not in commands:, so we don't need to compromise with if not (selection in commands):.

share|improve this answer

any() returns True if at least one of the elements in the argument iterable evaluates to True, and False otherwise. So, your code here:

if selection != any(commands):

Seeing as commands is a list of non-empty (thus, "true") strings, any will just return True. The code is left as:

if selection != True:

Which makes no sense :D. What you want to know is if selection exists in the list of commands, which you can do this way:

if selection not in commands:

Cheers!

share|improve this answer

Change this line:

if selection != any(commands):

For this other line:

if selection not in commands:
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.