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varA = 1

varB = 2

Code w/ Correct Result:

if type(varA) == type('a') or type(varB) == type('a'):
    print "string involved (either varA or varB is a string)"
else:
    print "varA and varB are not strings"

Code w/ Incorrect Result:

if type(varA) or type(varB) == type('a'):
    print "string involved (either varA or varB is a string)"
else:
    print "varA and varB are not strings"

Why exactly does the 2nd set of code not return the expected result (i.e. "varA and varB are not strings")? What is the step-by-step breakdown of what Python is doing with the 2nd set of code? I found a similar question had already been answered but did not entirely understand the explanation. Python: If-else statements.

share|improve this question
    
The proper form will be type(varA) is str –  volcano Jan 18 '14 at 22:48
    
possible duplicate of if x or y or z == blah –  Martijn Pieters Jan 18 '14 at 23:44
    
@volcano: the better form is isinstance(varA, str), to allow for subclasses. –  Martijn Pieters Jan 18 '14 at 23:45

4 Answers 4

up vote 3 down vote accepted

In the second code snippet, the condition of the if-statement is being interpreted by Python like this:

if (type(varA)) or (type(varB) == type('a')):

Moreover, it will always evaluate to True.

This is because, no matter what the value of varA is, type(varA) evaluates to True:

>>> varA = 'a'
>>> bool(type(varA))
True
>>> varA = False
>>> bool(type(varA))
True
>>>

In fact, since Python's logical operators short-circuit (stop evaluating as soon as possible), the type(varB) == type('a') part of the condition will never even be evaluated.


On a separate note, you should be using is to compare types:

if type(varA) is str or type(varB) is str:

or, you can use isinstance:

if isinstance(varA, str) or isinstance(varB, str):
share|improve this answer
    
Thanks for the quick answer! So since {type(varA)} is always {True}, Python will always run the code corresponding to True regardless of the actual type of {varA}. –  AyeSea Jan 18 '14 at 22:48
    
@Acey9 - Exactly. –  iCodez Jan 18 '14 at 22:51

Your second example does not work because it parses as

if (type(varA)) or (type(varB) == type('a')):

and type(varA) will always be a class type which is considered True, so the whole expression will be True


There are better ways to do this

if any(isinstance(v, str) for v in (varA, varB)):

any takes an iterable and evaluates to True if anything in the iterable is true. isinstance checks to see if the first argument "is a" second argument. Placing the generator expression inside of any reads as "if any v in (varA, varB) is a string): ... "

>>> var = 1
>>> isinstance(var, str) # var is an int, not a str
False
>>> isinstance(var, int)
True
>>> isinstance('a', int)
False
>>> isinstance('a', str) # 'a' is a str
True
share|improve this answer

iCodez is absolutely correct, but if you really want to do something along the lines of "list all elements and check if one of them is a string":

if str in map(type, [varA, varB]):
    print "string involved"
share|improve this answer

Because in the second case you are not comparing both variables. Any integer above 0 would return True so you are not comparing types here.

if type(varA):

will always be True, because varA is equal to 1. You never even get to the second part of the condition.

share|improve this answer
    
Wrong, type(0) is int. –  volcano Jan 18 '14 at 22:51
    
Not what I said. type(0) is int, but it's also False according to python. Check: if 0 == False: print 123 –  Alex Hristov Jan 18 '14 at 22:57
    
type(varA) is not an integer. And any non-0 value - integer or float - evaluates to True in boolean expression. Here is my piece of code for you if -1: print "Alex Hristov is wrong" ;-) –  volcano Jan 18 '14 at 23:01
    
Look at the original post. varA = 1 . varA is clearly an integer. –  Alex Hristov Jan 18 '14 at 23:05

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