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I am getting an error on line 14? I am new to python, very new, started 3 days ago.

varA = 2
varB = 1

if varB or varA == str:
 print("string involved")

elif varA > varB:
 print('bigger') 

elif varA == varB:
 print('equal')

else varA < varB:  
 print('smaller')  # this is line 14, why am I getting an error here?
share|improve this question
8  
else clause does not take predicate. Replace else varA < varB: with else:. – falsetru Oct 25 '13 at 2:19
4  
In the future, when you get an error, please post the error message (the whole thing, with the traceback) so we don't have to to guess. This time it was easy enough (and falsetru is fast enough) that it didn't waste any time, but in general it will. – abarnert Oct 25 '13 at 2:21
    
It would be useful in future to indicate what kind of errors you get and/or to mark out the line where you got the error. 14 is still easy to count, if it had been 67 or 80 that might have been a different story. Keep working :) – icedwater Oct 25 '13 at 2:21
1  
@falsetru: You should post that as an answer, since that's about all there is to say. – abarnert Oct 25 '13 at 2:22
    
@abarnert Oh but that's not all there is to say. – kojiro Oct 25 '13 at 2:26

You must change the second-last line to

elif varA < varB:

or to

else:

else cannot be used with a condition.

By the way: Your first if probably does not do what you want it to do. The condition you wrote evaluates to (varB) or (varA == str). What you want to do is:

if isinstance(varA, basestring) or isinstance(varB, basestring):
share|improve this answer
    
what about if varB == str or varA == str: – user2918250 Oct 25 '13 at 2:36
1  
The logic is better. But it will not do what you want it to do. str is a class. So if you compare var with str, it will only be equal if var is a reference to the str class. (You can try it using the interactive interpreter.) My code checks whether var is a string instance. – Robin Krahl Oct 25 '13 at 2:40

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